WO1996039357A1 - Porous inorganic oxide materials prepared by non-ionic surfactant templating route - Google Patents

Porous inorganic oxide materials prepared by non-ionic surfactant templating route Download PDF

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WO1996039357A1
WO1996039357A1 PCT/US1996/007574 US9607574W WO9639357A1 WO 1996039357 A1 WO1996039357 A1 WO 1996039357A1 US 9607574 W US9607574 W US 9607574W WO 9639357 A1 WO9639357 A1 WO 9639357A1
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template
composition
compoεition
oxide
inorganic oxide
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PCT/US1996/007574
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French (fr)
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Thomas J. Pinnavaia
Stephen A. Bagshaw
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Michigan State University
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Priority to DE69625480T priority Critical patent/DE69625480T2/en
Priority to EP96916589A priority patent/EP0830314B1/en
Publication of WO1996039357A1 publication Critical patent/WO1996039357A1/en

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    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B37/00Compounds having molecular sieve properties but not having base-exchange properties
    • C01B37/02Crystalline silica-polymorphs, e.g. silicalites dealuminated aluminosilicate zeolites
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B37/00Compounds having molecular sieve properties but not having base-exchange properties
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B37/00Compounds having molecular sieve properties but not having base-exchange properties
    • C01B37/005Silicates, i.e. so-called metallosilicalites or metallozeosilites
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01FCOMPOUNDS OF THE METALS BERYLLIUM, MAGNESIUM, ALUMINIUM, CALCIUM, STRONTIUM, BARIUM, RADIUM, THORIUM, OR OF THE RARE-EARTH METALS
    • C01F7/00Compounds of aluminium
    • C01F7/02Aluminium oxide; Aluminium hydroxide; Aluminates
    • C01F7/34Preparation of aluminium hydroxide by precipitation from solutions containing aluminium salts
    • C01F7/36Preparation of aluminium hydroxide by precipitation from solutions containing aluminium salts from organic aluminium salts
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01PINDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
    • C01P2002/00Crystal-structural characteristics
    • C01P2002/04Compounds with a limited amount of crystallinty, e.g. as indicated by a crystallinity index
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01PINDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
    • C01P2002/00Crystal-structural characteristics
    • C01P2002/70Crystal-structural characteristics defined by measured X-ray, neutron or electron diffraction data
    • C01P2002/72Crystal-structural characteristics defined by measured X-ray, neutron or electron diffraction data by d-values or two theta-values, e.g. as X-ray diagram
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01PINDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
    • C01P2004/00Particle morphology
    • C01P2004/60Particles characterised by their size
    • C01P2004/62Submicrometer sized, i.e. from 0.1-1 micrometer
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01PINDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
    • C01P2006/00Physical properties of inorganic compounds
    • C01P2006/12Surface area
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01PINDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
    • C01P2006/00Physical properties of inorganic compounds
    • C01P2006/16Pore diameter

Definitions

  • This invention relates to the synthesis of crystalline, porous inorganic oxide materials possessing uniform framework-confined mesopores in the range 2.0-10.0 nm and large elementary particle size of greater than 500 nm.
  • the present invention relates to such materials where the formation of the mesoporous structure is accomplished by a novel self-assembly mechanism involving complexation and/or hydrogen (H) bonding between aqueous or alcoholic emulsions of various nonionic polyethylene oxide based surfactants (N°) and various neutral inorganic oxide precursors (1°) . This is followed by hydrolysis and subsequent condensation of hydrolysis products at ambient reaction temperatures.
  • H complexation and/or hydrogen
  • This (NT) templating approach allows for the removal of template through calcination or solvent extraction which lowers material and energy costs.
  • the template is biodegradable.
  • the (NT) templating approach also affords non-lamellar mesostructures of metal oxides in addition to silica.
  • Porous materials may be structurally amorphous, para-crystalline or crystalline.
  • Amorphous materials such as silica gel or alumina gel, do not possess long range crystallographic order, whereas para-crystalline solids such as y- or ⁇ - alumina are semi-ordered, producing broad X-ray diffraction peaks.
  • para-crystalline solids such as y- or ⁇ - alumina are semi-ordered, producing broad X-ray diffraction peaks.
  • Both these classes of materials exhibit very broad pore distributions predominantly in the mesoporous range. This wide pore distribution however, limits the effectiveness of catalysts, adsorbents and ion-exchange systems prepared from such materials.
  • Zeolites and some related molecular sieves such as; alumino-phosphates and pillar interlayered clays, possess rigorous uniform pore sizes.
  • Zeolites are considered as a subclass of molecular sieves owing to their ability to discriminate small molecules and perform chemistry upon them.
  • Molecular sieves in general are materials with crystalline frameworks in which tetrahedral Si and/or Al atoms of a zeolite or zeolitic lattice are entirely or in part substituted by other atoms such as B, Ga, Ge, Ti, Zr, V, Fe or P.
  • Negative charge is created in the zeolite framework by the isomorphous substitution of Si + ions by l ⁇ + or similar ions. In natural zeolites, this charge is balanced by the incorporation of exchangeable alkali or alkaline earth cations such as Na + , K + , Ca ⁇ + .
  • Synthetic zeolites utilize these and other cations such as quaternary ammonium cations and protons as charge balancing ions.
  • Zeolites and molecular sieves are generally prepared from aluminosilicate or phosphate gels under hydrothermal reaction conditions. Their crystallization, according to the hereafter discussed prior art, is accomplished through prolonged reaction in an autoclave for 1-50 days and oftentimes, in the presence of structure directing agents (templates) . The correct selection of template is of paramount importance to the preparation of a desired framework and pore network.
  • templates structure directing agents
  • 3,702,886 teaches that an aluminosilicate gel (with high Si/Al ratio) crystallized in the presence of quaternary tetrapropyl ammonium hydroxide template to produce zeolite ZSM-5.
  • Other publications teach the use of different organic templating agents and include; U. S. Pat. No. 3,709,979, wherein quaternary cations such as tetrabutyl ammonium or tetrabutyl phosphonium ions crystallize ZSM-11 and U. S. Pat. No. 4,391,785 demonstrates the preparation of ZSM-12 in the presence of tetraethyl ammonium cations.
  • Pathway 3 The viability of Pathway 3 was demonstrated by the synthesis of hexagonal MCM-41 using a quaternary alkyl ammonium cation template under strongly acidic conditions (5 - 10 mol L "1 HCI or HBr) in order to generate and assemble positively charged framework precursors (Stucky et al. ibid) .
  • Pathway 4 was demonstrated by the condensation of anionic aluminate species with an anionic template (Ci2 H 25 0P0 3 ⁇ ) via alkali cation mediated (Na + , K + ) ion pairing, to produce a lamellar Al(OH)3 phase. Pinnavaia et al .
  • Template removal of anionic surfactant has however, been demonstrated by ion-exchange with low pH acidic cation donor solutions (U. S. Pat. No. 5,143,879).
  • Template-halide pairs in the framework of acidic Pathway 3 materials can be displaced by ethanol extraction (Stucky et al . ibid) .
  • ionic template recovery is possible, provided that exchange ions or ion pairs are present during the extraction process.
  • Framework-confined uniform pores are pores formed by the nucleation and crystallization of the framework elementary particles and are typically highly regular cavities and channels confined by the solid framework. The size of these cavities and channels is predetermined by the thermodyna ically favored assembly routes.
  • Textural porosity is that which can be attributed to voids and channels between elementary particles and/or aggregates of such particles (grains) .
  • Each elementary particle in the case of molecular sieves is composed of a certain number of framework unit cells each in turn containing framework-confined uniform pores. Textural porosity is formed during crystal growth and segregation or during subsequent thermal treatment or acid leaching.
  • the size of the textural pores is determined by the size, shape and the number of interfacial contacts of these particles or aggregates.
  • the size of the textural pores is generally one or two orders of magnitude larger than that of the framework-confined pores and is proportional to the elementary particle size.
  • XRD powder X-ray diffraction
  • SEM Scanning Electron Microscopy
  • TEM Transmission Electron Microscopy
  • adsorption/desorption can determine the existence of and differentiate between framework-confined and textural mesoporosities.
  • the crystallographic distance between repeat units in the elementary particles and some information about the arrangement of such repeat units can be obtained from XRD.
  • Particle sizes and shapes and preliminary information regarding textural mesoporosity can be established by SEM and TEM.
  • Analysis of the N2 or Ar adsorption-desorption isotherms of the solid material can indicate both framework-confined and textural mesoporosities.
  • Textural mesoporosity is evidenced by the presence of a Type IV isotherm exhibiting a well defined hysteresis loop in the relative pressure region Pj/ P 0 > 0.5 (Sing et al . , Pure Appl . Chem . , Vol. 57, 603-619, (1985)). This behavior is common for a variety of para-crystalline materials and freeze-dried pillared layered solids. Framework- confined mesoporosity is characterized by a sharp adsorption uptake followed by a hysteresis loop in the 0.3-0.4 Pj/ P 0 region. This hysteresis corresponds to capillary condensation in the framework-confined mesopores.
  • the large particle size precludes the formation of textural mesoporosity and a corresponding ratio of textural to framework-confined mesoporosity approaching zero is calculated.
  • the elementary particle size was smaller ( ⁇ 40.0 nm) producing a ratio of textural to framework-confined mesoporosity greater than 0.2.
  • the molecular sieve materials and preparation techniques provide several distinct disadvantages and advantages: i)
  • the prior art of Pathways l through 4 teaches the use of charged surfactant species as templates in order to assemble inorganic frameworks from charged inorganic precursors. These charged templates are generally expensive, strongly bound to the inorganic framework and therefore difficult to recover. Additionally, many of these templates such as the most commonly used quaternary ammonium cations are highly toxic and environmentally undesirable.
  • the template was removed from the structure by either calcining it out or by ion-exchange reactions.
  • Pathway 5 prior art templates are also highly toxic and environmentally unsuitable, but may be removed through environmentally benign ethanol extraction and thereby recovered and reused.
  • Figures IA and IB are graphs showing representative X-ray powder diffraction patterns of MCM- 41 (Fig. IA) Beck et al . , J . Am . Chem . Soc . , Vol. 114, 10834 - 10843, (1992) and HMS (Fig. IB) Pinnavaia et al . (Science , Vol. 267, 865 - 867, (1995) products .
  • Figures 2A and 2B are graphs showing representative 2 adsorption-desorption isotherm for MCM- 41 (Fig. 2A) Beck et al . , J . Am . Chem . Soc , Vol. 114, 10834 - 10843, (1992) and HMS (Fig. 2B) Pinnavaia et al . (Science , Vol. 267, 865 - 867, (1995) products .
  • Figure 3 is a graph showing the X-ray powder diffraction patterns of the as synthesized (curve A) and calcined (curve B) MSU-1 products from Example 3.
  • Figure 4 is a graph of the N 2 adsorption-desorption isotherm for the calcined MSU-1 product from Example 3.
  • Figure 4A is a graph of the corresponding Horvath-Kawazoe framework-confined mesopore size distribution curve.
  • Figure 5 is a graph of the X-ray powder diffraction patterns of the as synthesized (curve A) and calcined (curve B) MSU-3 products from Example 16.
  • Figure 6 is a graph of the N2 adsorption-desorption isotherm for the calcined MSU-3 product from Example 16.
  • Figure 6A is a graph of the corresponding Horvath-Kawazoe framework-confined mesopore size distribution curve.
  • Figure 7 is a graph of the X-ray powder diffraction patterns of the as-synthesized (curve A) and calcined (curve B) MSU-3 Alumina products of Example 19.
  • Figure 8 is a graph of the N 2 adsorption-desorption isotherm for the calcined MSU-3 Alumina product from Example 19.
  • Figure 8A is a graph of the corresponding Horvath-Kawazoe framework-confined mesopore size distribution curve.
  • Figure 9 is a representative chemical structure of a secondary fatty alcohol poly-ethoxylate (TergitolTM) .
  • Figure 10A is a representative chemical structure of an alkyl phenol poly-ethoxylate (Triton XTM).
  • Figure 10B is Igepal RC-760.
  • Figure 11 is a representative chemical structure of a fatty acid ethoxylate.
  • Figure 12 is a representative chemical structure of an ethylene oxide-propylene oxide-ethylene oxide tri-block co-polymer (Pluronic 64LTM) .
  • Figure 13 is a representative chemical structure of the ethylene diamine propylene oxide-ethylene oxide derivative (TetronicTM) .
  • Figure 14 is a representative chemical structure of a primary fatty amine poly-ethoxylate.
  • Figure 15 is a representative chemical structure of a fatty acid PPO/PEO block co-polymer.
  • Figure 16 is a representative chemical structure of a sorbitan ethoxylate. DESCRIPTION OF PREFERRED EMBODIMENTS
  • the present invention relates to a synthetic, semi-crystalline inorganic oxide composition having at least one resolved x-ray reflection corresponding to a lattice spacing of 3 to 10 nm, a framework wall thickness of at least about 2 nm, framework confined pores between about 2 and 10 nm, an elementary particle size greater than 500 nm, and a specific surface area of 300 to 1200 square meters per gram.
  • the present invention also relates to a synthetic, semi-crystalline inorganic oxide composition prepared by reacting in a reaction mixture a nonionic poly(alkylene oxide) derived surfactant as a template (N°) and a neutral inorganic oxide precursor (1°), followed by hydrolysis and crosslinking of the inorganic oxide precursor to provide the composition.
  • the present invention further relates to a method for the preparation of a synthetic semi- crystalline inorganic oxide composition which comprises: providing a mixture of (i) a neutral inorganic oxide precursor (1°) containing at least one element selected from the group consisting of di-, tri-, tetra-, penta- and hexavalent elements and mixtures thereof; (ii) a non-ionic poly(alkylene oxide) surfactant (S°) as a template; and (iii) a hydrolyzing agent; mixing the solution to form a gel containing the composition; separating at least some of the hydrolyzing agent and the surfactant to form the composition; and optionally calcining the composition.
  • a neutral inorganic oxide precursor (1°) containing at least one element selected from the group consisting of di-, tri-, tetra-, penta- and hexavalent elements and mixtures thereof
  • non-ionic poly(alkylene oxide) surfactant
  • the present invention provides to a new route to the synthesis of semi-crystalline materials with well defined framework-confined mesopores and large elementary particle size.
  • the compositions produced in the current invention are distinguished from those of the prior art by the virtue of the method of preparation of the present invention, the subsequent architecture of the mesoporous structure and the range of templated metal oxides other than silica that is afforded by this route.
  • Formation of the mesoporous network is accomplished by interaction (complexation and/or hydrogen-bonding) between a nonionic polyethylene oxide based surfactant template and neutral inorganic precursors, followed by hydrolysis and subsequent condensation of the inorganic reaction product under either ambient or elevated temperature reaction conditions and the subsequent removal of the solvent phase and the template.
  • the present invention particularly provides a preferred totally nonionic (N° 1°) route to the preparation of quasi-crystalline oxide compositions
  • a preferred totally nonionic (N° 1°) route to the preparation of quasi-crystalline oxide compositions
  • N° 1° a nonionic polyethylene oxide-based surfactant
  • STP standard temperature and pressure
  • STP neutral inorganic precursors with stirring at standard temperatures and pressures
  • the present invention thus provides a new route to inorganic oxide crystalline materials with uniform well defined framework-confined mesopores and controlled elementary particle size that can be utilized as adsorbents, catalysts and catalyst supports for the catalytic conversion of organic substrates.
  • the present invention is distinguished from the prior art by the new preparative N' I" method used to obtain the mesoporous crystalline inorganic oxide materials, the pore morphology of the said materials and the range of templated mesoporous metal oxide materials that may be prepared by this method.
  • the formation of the mesoporous structure is accomplished by interaction (complexation and/or hydrogen bonding) between template molecules within micellar aggregates of nonionic polyethylene oxide-based templates and neutral inorganic oxide precursors, followed by hydrolysis and cross linking of 10 ⁇ . units, where I is a central metallic or non-metallic element coordinated to x oxygen atoms (2 ⁇ x ⁇ 6) . This interaction is most likely to occur between an I-OH unit and the terminal OH function of each surfactant molecule, or between the I-OH unit and the array of lone pair electrons on the template polar segment.
  • the polar segment of the template in the present invention is flexible and appears to act in the fashion of a crown ether complexing a I-OH unit, thereby stabilizing a site of nucleation for subsequent condensation of the mesoporous quasi-crystalline inorganic oxide product, although the inventors do not want to be bound to any particular theory.
  • the inventors know of no prior art teaching the preparation of micro-, meso-, or macro-porous inorganic oxide compositions by such a nonionic N° 1° mechanism involving crystallization of inorganic oxide precursors around well defined micelles of nonionic surfactants.
  • the present result is achieved by using micelles of a nonionic surfactant to template and assemble a neutral inorganic reactant precursor into a mesoporous framework structure.
  • Complexation and/or hydrogen bonding between the template and the reagent is believed to be the primary driving force of the assembly of the framework in the current invention.
  • the aforementioned method consists of the formation of a solid precipitate by the mixing of a solution or emulsion of a polyethylene oxide-based nonionic surfactant, with a neutral inorganic oxide precursor.
  • a polyethylene oxide-based nonionic surfactant being an inorganic alkoxide
  • the template may be recovered by extraction with ambient temperature alcohol or hot water whose temperature exceeds the cloud point of the template. Complete removal of the remainder of the template and final crosslinking of the 10 ⁇ framework is accomplished by calcination in air at temperatures between 673° K and 923° K for at least 4 h.
  • the molar ratio of inorganic oxide precursor to surfactant is between 10:1 and 20:1 depending upon the specific template being used.
  • the concentration of surfactant in solution is between 0.003 mol L "1 and 0.4
  • the crystalline inorganic oxide composition of the present invention in its calcined state has the desired composition: nR-E0/A v B w C x D y 0 z
  • R-EO is at least one of a selection of nonionic alkyl, or alkyl/aryl polyethylene oxide or polyethylene oxide-polypropylene oxide-polyethylene oxide block co- polymer molecules;
  • A is at least one optional trivalent element such as Al, Ga or Fe;
  • B is at least one optional tetravalent metallic element such as Ge, Ti, V, Sb or Zr;
  • C is the optional tetravalent element Si;
  • D is an optional pentavalent or hexavalent element such as V, W or Mo;
  • O is oxygen and v, w, x, y and z are the molar stoichiometries of A, B, C, D and O respectively.
  • the semi-crystalline mesoporous materials of the present invention may be described as being formed by hydrogen-bonding between the terminal hydroxyl function or the array of lone pair electrons on the O atoms of the ethylene oxide units of the template molecules and any M-(OR) JC compound. This H-bonding is followed by hydrolysis and subsequent condensation and cross-linking of 10 ⁇ units under ambient or elevated temperature reaction conditions.
  • composition of this invention is characterized by at least one strong XRD peak at a basal (d I00 ) spacing of at least 3.0 nm or larger.
  • the compositions are also distinguished in part from those of the prior art, specifically MCM-41 materials, by lower crystallographic regularity and larger framework wall thicknesses (> 2.0 nm) .
  • the composition of the present invention is distinguished from the prior art of HMS materials by lower crystallographic regularity, the presence of longer range pore structures, substantially larger particle sizes and near zero textural mesoporosity.
  • the template may be removed from the condensed reaction products in at least three different ways: (i) air drying followed by calcination in air or in inert gas preferably at a temperature from 673° K to 923° K for 4 to 6 h; (ii) solvent extraction of the template from the air dried material using alcohol or hot water; (iii) combination of (i) and (ii) .
  • Procedure (i) results in the complete oxidation and thereby decomposition of the occluded template.
  • the current invention improves on the environmental impact of the prior material preparation art, as the oxidation products of quaternary ammonium and amine based surfactant templates described in the prior art, include environmentally undesirable N0 ⁇ gases, while the oxidation products of polyethylene oxide based surfactants are the more environmentally compatible H2O and CO2 gasses.
  • Procedure (ii) allows the template to be recovered and subsequently recycled and reused. If the template is removed by procedure (ii) , the product should be calcined in air or inert gas to remove the final traces of the template and to complete the cross linking of the mesostructure.
  • the present compositions may be used as adsorbents, molecular sieves, catalysts and catalyst supports.
  • a catalytically active element such as Al, Ag, Cu, Cr, Pt, Pd, Ti, V, Zr or mixtures thereof, or when intercalated with transition metal inorganic metallocycles, it can be used as a catalyst for cracking, hydrocracking, hydrogenation-dehydrogenation, isomerization or oxidations involving large and small organic substrates.
  • the new synthesis method of the compositions of this invention involves the preparation of solutions or emulsions of a surfactant template compound and reaction of this solution with liquid di-, tri-, tetra-, penta- or hexa-valent metal or metalloid hydrolyzable reagents in the presence of a hydrolysing agent under stirring, sonication or shaking, until formation of the desired precipitated product is achieved and recovering the solid material.
  • the template is described more particularly as a nonionic (neutral) polyethylene oxide based molecule that would possess one of many different molecular structures and the hydrolysing agent is described as water.
  • alkyl- polyethylene oxides such as are related to the Tergitol 15-S-J ⁇ products ( Figure 9) are derived from the reaction of ethylene oxide with a primary or secondary alcohol and possess the basic formula R /? -0(E0) m H where R is a hydrophobic alkyl group with n ranging from 1 to at least 20 carbon atoms, EO is a hydrophilic ethylene oxide unit (OCH2CH2) with m ranging from about 7 to 40, preferably at least 20.
  • R is a hydrophobic alkyl group with n ranging from 1 to at least 20 carbon atoms
  • EO is a hydrophilic ethylene oxide unit (OCH2CH2) with m ranging from about 7 to 40, preferably at least 20.
  • alkyl-phenyl polyethylene oxides such as Igepal-RC ( Figure 10B) and Triton-X ( Figure 10A) possess the same range of structures as the alkyl- polyethylene oxides, with the exception that the primary (Igepal RC) , secondary or tertiary (Triton X) R group is bound to the EO units through a hydrophobic phenoxy group (PhO) .
  • These molecules then, have the basic formula; R ⁇ -Ph-OfEOJ ⁇ H, preferably where is 8 to 10 and n is 8.
  • the polyethylene oxide (PEO) -polypropylene oxide (PPO) molecules are derived from the addition of hydrophobic propylene oxide to propylene glycol followed by the addition of hydrophilic ethylene oxide. They are defined as PEO - PPO ⁇ -PEO ⁇ tri-block co-polymers wherein n is controlled by length to constitute from 10% to 80% by weight of the final product. The order of the PEO and PPO units may be reversed in order to p * • roduce the PPO tn-PEO n-PPO tn triblock co-polymers; Pluronic-R.
  • n is 30 and m is 13.
  • a fourth basic PEO based surfactant type is derived by from the substitution of the hydrogens of ethylene diamine by ethylene oxide and propylene oxide units to form the X shaped, Tetronic, molecules ( Figure 1 3 ) w i t h b a s i c f o r m u l a ; ((EO) ⁇ -(PO) w ) 2 -NCH 2 CH 2 N-((PO)
  • the order of the PEO and PPO groups in these molecules may also be reversed to form Tetronic-R.
  • m is 13 and n is 30.
  • compositions comprise steps as follows:
  • step (ii) addition of the desired metal oxide precursor to the surfactant solution under stirring, sonication or shaking; (i ⁇ ) preparation of a solution of the hydrolysing agent in the alcohol used in step (i) .
  • the hydrolysing agent is water; (iv) very slow addition of the hydrolysing agent to the template/inorganic precursor solution under stirring. (iii and iv are not required if templated silica is being prepared) ;
  • the inorganic oxide precursors are single or double metal alkoxide compounds.
  • the list of preferred alkoxides includes but not exclusively: aluminum(III) ethoxide, aluminum(III) isopropoxide, aluminum(IIl) n-, sec- or tert- butoxide, antimony(III) isopropoxide, antimony(III) n-butoxide, calcium(II) ethoxide, calcium(II) isopropoxide, calcium(II) tert- butoxide, chromium(IV) isopropoxide, chromium(IV) tert- butoxide, copper(II) methoxyethoxide, gallium(III) isopropoxide, germanium(IV) ethoxide, germanium(IV) isopropoxide, indium(III) isopropoxide, iron(III) ethoxide, iron(III) isopropoxide, iron(III) tert- butoxide, lead(II) isopropoxide, lead(II) tert- butoxide,
  • the alcohols used in step (i) of the preparation art correspond to the alcoholate ligand from which the metal alkoxide is derived.
  • the alcohols thus preferred are methanol, ethanol, n- and isopropanol and n- , sec- , tert- , butanol.
  • the alcohols contain 1 to 4 carbon atoms.
  • Said mixed metal alkoxides are obtained through proprietary preparations or by reaction of desired metal alkoxides in desired molar ratios under reflux (433° K) for 3 - 4 h.
  • the said reacting of the inorganic precursor and the template solution is achieved at room temperature (298° K to 303° K) under stirring for at least 16 h.
  • Aging of the reaction mixture may be achieved at room temperature either under stirring, sonication or shaking or by being left to stand for at least 24 h.
  • the reacting occurs through complexation or H-bonding between a neutral nonionic template and neutral inorganic oxide precursors, followed by hydrolysis and crosslinking of IO A . units at ambient or elevated reaction temperatures.
  • the complexation, or H-bonding most likely occurs between the terminal OH group of the template molecules and the hydrolyzable ligand on the inorganic precursor molecule, or between the inorganic precursor molecule and the electron lone pairs of the ethylene oxide groups in the hydrophilic head group of the template molecules.
  • the calcination is performed in a temperature controlled oven by heating in air at a rate of 2° K min " ⁇ to a final temperature between 673° K and 923° K for at least 30 min, preferably 4 to 6 h.
  • the templated inorganic oxide compositions of the present invention can be combined with other components, for example, zeolites, clays, inorganic oxides or organic polymers or mixtures thereof. In this way adsorbents, ion-exchangers, catalysts, catalyst supports or composite materials with a wide variety of properties may be prepared. Additionally, one skilled in the art may impregnate or encapsulate transition metal macrocyclic molecules such as porphyrins or phthalocyanines containing a wide variety of catalytically active metal centers.
  • the surfaces of the compositions can be functionalized in order to produce catalytic, hydrophilic or hydrophobic surfaces.
  • This functionalization can be introduced during the synthesis procedure by replacing the metal alkoxide precursor with alkyl metal alkoxide [MR(OR) A ._,] reactants, or metal carboxylate reactants.
  • the surfaces may be functionalized after synthesis by reaction with various chlorides, fluorides, sylisation or alkylating reagents.
  • Examples 1-6 The desired amount of one of a range of Tergitol 15-S templates, with varying hydrophilic head group lengths, was dissolved in one hundred milliliters of deionized H2O under stirring at room temperature, until a homogeneous solution was obtained. The appropriate quantity of Si(OC 2 H 5 ) 4 was added at once to the above template solution under stirring at room temperature.
  • the reaction stoichiometry expressed in terms of moles per mole Si correspond to the following: 0.1 mol R_-(OCH 2 CH 2 ) consult,OH 50 mol H 2 0
  • the resulting solution was stirred and aged for 16 h at room temperature. During the initial 1-3 h stirring, white templated products were observed as solid precipitates. The products were separated from the mother liquor through filtration or centrifugation and dried at room temperature. The template wa ⁇ then removed through calcination in air at 923° K for 4 h.
  • the diffraction data were recorded by step scanning at 0.02 degrees of 2 theta, where theta is the Bragg angle and photon counting time of 1 ⁇ ec step " .
  • the d-spacings of the X- ray reflections of the samples were calculated in nm.
  • Transmission electron micrographs were obtained on a JEOL JEM 100CX II (Japan) electron microscope by observing unmodified particles supported on carbon coated copper grids (400 mesh) .
  • the sample images were obtained using an accelerating voltage of 120 kV, a beam diameter of approximately 5mm and an objective lens aperture of 20 mm.
  • the pore structures of said compositions were characterized by measuring N 2 adsorption-desorption isotherms using a Coulter 360CX (Florida) sorptometer. Isotherms were recorded at 70° K using a standard continuous sorption procedure. Before measurement, each sample was outgassed overnight at 323° K and 10 "6 Torr.
  • the pore size distributions of the compositions were calculated following the method of Horvath and Kawazoe (G. Horvath and K. J. Kawazoe, J . Chem . Eng . Jpn . , 16, 470-475 (1983)) .
  • Thermogravimetric analyses of the samples were performed under a flow of dry N gas on a CAHN ⁇ ystem thermogravimetric gas (TG) analyzer using a heating rate of 5° K min .
  • the amounts of each surfactant used in the examples 1-6, together with the corresponding physico-chemical parameters are summarized in Table 1.
  • Example 9 Example 10:
  • the resulting precipitate was aged under stirring at room temperature for 16 h to obtain the templated product.
  • the product was then transferred into sealed containers and heated at 373° K for a further 16 h.
  • the crystalline product was then filtered, dried at room temperature and calcined at 923° K for 4 h to remove the occluded template.
  • the physico-chemical properties of the calcined templated products are described in Table 2.
  • Examples 12 and 13 The following examples were prepared to confirm the ability of alkyl-phenyl polyethylene oxide surfactants to act as templating agents for mesostructure formation in the manner of the present invention.
  • Triton-X 100 and Triton-X 114 were prepared as in the manner of the preparation art of Example ⁇ 1 through 11.
  • Si(OC-,H5) was added at once in the appropriate amount so that the Si : surfactant molar ratio was 10 : 1 as in the preparation art of Examples 1 through 11.
  • the remainder of the synthesis was identical to the preparation art described in Examples 1 through 6.
  • the calcined templated products exhibited XRD patterns, BET surface areas, HK pore size distributions and pore wall thicknesses as described in Table 3.
  • the Material designation is MSU-2.
  • compositions prepared by templating with various concentrations of the nonionic surfactant Pluronic 64L are presented for compositions prepared by templating with various concentrations of the nonionic surfactant Pluronic 64L.
  • This surfactant differs from those discussed in the prior examples in that the hydrophobic part of the surfactant molecule is ba ⁇ ed on propylene oxide units.
  • the molecule is defined as a polyethylene oxide-polypropylene oxide- polyethylene oxide tri-block co-polymer.
  • Aqueous solution ⁇ of Pluronic 64L with concentration ⁇ of 5%, 10% and 15% weight of surfactant per weight of solvent were prepared as in the preparation art of the previous examples 1 through 13.
  • Si(OC H ⁇ 5) 4 was added at once in the appropriate amount ⁇ o that the Si : surfactant molar ratio was 20 : 1.
  • the remainder of the preparation was identical to the preparation art of examples 7 through 11.
  • the calcined templated products exhibited physico-chemical properties as described in Table 4. TABLE 4
  • the Material designation is MSU-3.
  • Example 17 demonstrate ⁇ the viability of recovering the template from the inorganic ⁇ tructure prior to calcination through solvent extraction.
  • a 0.05 g quantity of the air dried and heat treated at 373° K but non-calcined product of Example 14 is examined by thermogravimetric analysis (TGA) under N 2 gas flow at a heating rate of 5° K C min "1 .
  • TGA thermogravimetric analysis
  • One gram of the same air dried and non-calcined product of Example 14 i ⁇ ⁇ tirred in 100 milliliters of hot water ( ⁇ 363° K ) for 3 h.
  • the product is then filtered and washed with a ⁇ econd and a third 100 milliliter volumes of hot water.
  • the filtered product i ⁇ then dried at room temperature for 16 h.
  • Thi ⁇ product is then analyzed by TGA and vibrational spectro ⁇ copy.
  • Thi ⁇ example de on ⁇ trates the ability of the present invention to prepare .compositions whereby framework Si atoms have been substituted by different metal atoms, for example Ti.
  • a substituted or polymerized metal alkoxide compound is formed by reaction of Si(OC 2 H5) 4 with Ti(OCH(CH 3 ) 2 ) such that the molar % of Ti for each composition was 0.5%, 1.0% and 5.0%.
  • the appropriate amount of Ti(OCH(CH3) 2 ) is dissolved in the appropriate quantity of Si(OC 2 H ⁇ j ) 4 under stirring.
  • the resultant solution is then heated under reflux at the boiling point of the Si(OC 2 H 5 ) 4 (433° K) for 4 h.
  • the solution is then cooled to room temperature and added to a solution of nonionic polyethylene oxide based surfactant in the appropriate ratio as taught in Examples 1 through 16.
  • the preparation art then follows that of Examples 7 through 11.
  • the physico-chemical properties of Zr- and Ti- substituted MSU-1 compositions are presented in Table 5.
  • Thi ⁇ example describes the preparation art of nonionic surfactant templated mesoporous aluminum oxide.
  • the desired amount of Pluronic 64L was dissolved under stirring at room temperature in 50 milliliters of an alcohol corresponding to the alkoxide ligand of the aluminum alkoxide inorganic precursor, which in the present art, was sec-butanol.
  • the appropriate amount of Al (OCH(CH 3 )CH,CHj), was then dissolved in that solution such that the Al : surfactant molar ratio was 10 : 1. No precipitation reaction was observed at this point.
  • An aliquot of deionized H 2 0 was dissolved in 10 milliliters of sec- butanol such that the H 2 0 : Al molar ratio wa ⁇ 2 : 1. This solution was added very slowly to the Al/surfactant solution under stirring at room temperature.

Abstract

A method for the preparation of new quasi-crystalline, porous inorganic oxide materials possessing uniform framework-confined mesopores in the range 2.0-10.0 nm and large elementary particle size of more than 500.0 nm. The method uses an interaction between various non-ionic polyethylene oxide based surfactants (N°) and neutral inorganic oxide precursors (I°) at ambient reaction temperatures. The materials formed exhibit semi-ordered arrays of well defined pores owing to the specific mechanism of self-assembly, large pore wall thicknesses of at least 2.0 nm producing highly stable materials and large particle sizes incorporating large numbers of pores. This (N° I°) templating approach introduces several new concepts to mesostructure synthesis. The application of the low-cost, non-toxic and biodegradable surfactants and ambient reaction temperatures, introduces environmentally clean synthetic techniques to the formation of mesostructures. Recovery of the template can be achieved through solvent extraction where the solvent may be water or ethanol.

Description

POROUS INORGANIC OXIDE MATERIALS PREPARED BY NON-IONIC SURFACTANT TEMPLATING ROUTE
Government Rights
The present invention was sponsored under National Science Foundation Contract CHE 9224102. The Government has certain rights to this invention. BACKGROUND OF INVENTION;
(1) Field of Invention:
This invention relates to the synthesis of crystalline, porous inorganic oxide materials possessing uniform framework-confined mesopores in the range 2.0-10.0 nm and large elementary particle size of greater than 500 nm. In particular, the present invention relates to such materials where the formation of the mesoporous structure is accomplished by a novel self-assembly mechanism involving complexation and/or hydrogen (H) bonding between aqueous or alcoholic emulsions of various nonionic polyethylene oxide based surfactants (N°) and various neutral inorganic oxide precursors (1°) . This is followed by hydrolysis and subsequent condensation of hydrolysis products at ambient reaction temperatures. This (NT) templating approach allows for the removal of template through calcination or solvent extraction which lowers material and energy costs. The template is biodegradable. The (NT) templating approach also affords non-lamellar mesostructures of metal oxides in addition to silica.
(2) Description of Prior Art;
Modern human activities rely greatly upon porous solids of both natural and synthetic design. The pore structures of such solids are generally formed during crystallization or during subsequent treatments.
These solid materials are classified depending upon their predominant pore sizes: (i) microporous, with pore sizes < 1.0 nm; (ii) macroporous, with pore sizes exceeding 50.0 nm; and mesoporous, with pore sizes intermediate between 1.0 and 50.0 nm. Macroporous solids find limited use as adsorbents or catalysts owing to their low surface areas and large non-uniform pores. Micro- and mesoporous solids however, are widely utilized in adsorption, separation technologies and catalysis. There is an ever increasing demand for new, highly stable well defined mesoporous materials because of the need for ever higher accessible surface areas and pore volumes in order that various chemical processes may be made more efficient or indeed, accomplished at all. Porous materials may be structurally amorphous, para-crystalline or crystalline. Amorphous materials, such as silica gel or alumina gel, do not possess long range crystallographic order, whereas para-crystalline solids such as y- or η- alumina are semi-ordered, producing broad X-ray diffraction peaks. Both these classes of materials exhibit very broad pore distributions predominantly in the mesoporous range. This wide pore distribution however, limits the effectiveness of catalysts, adsorbents and ion-exchange systems prepared from such materials.
Zeolites and some related molecular sieves such as; alumino-phosphates and pillar interlayered clays, possess rigorous uniform pore sizes. Zeolites are highly crystalline microporous aluminosilicates where the lattice of the material is composed of I04 tetrahedra (I=A1, Si) linked by sharing the apical oxygen atoms. Cavities and connecting channels of uniform size form the pore structures which are confined within the specially oriented I04 tetrahedra (Breck, D. W. , Zeolite Molecular Sieves: Structure, Chemistry and Use; Wiley and Sons; London, pages 1 to 100 (1974)). Zeolites are considered as a subclass of molecular sieves owing to their ability to discriminate small molecules and perform chemistry upon them. Molecular sieves in general are materials with crystalline frameworks in which tetrahedral Si and/or Al atoms of a zeolite or zeolitic lattice are entirely or in part substituted by other atoms such as B, Ga, Ge, Ti, Zr, V, Fe or P. Negative charge is created in the zeolite framework by the isomorphous substitution of Si + ions by l^+ or similar ions. In natural zeolites, this charge is balanced by the incorporation of exchangeable alkali or alkaline earth cations such as Na+, K+, Ca^+. Synthetic zeolites utilize these and other cations such as quaternary ammonium cations and protons as charge balancing ions. Zeolites and molecular sieves are generally prepared from aluminosilicate or phosphate gels under hydrothermal reaction conditions. Their crystallization, according to the hereafter discussed prior art, is accomplished through prolonged reaction in an autoclave for 1-50 days and oftentimes, in the presence of structure directing agents (templates) . The correct selection of template is of paramount importance to the preparation of a desired framework and pore network. A wide variety of organic molecules or assemblies of organic molecules with one or more functional groups are known in the prior art to provide more than 85 different molecular sieve framework structures. (Meier et al . , Atlas of Zeolite Structure types , Butterworth, London, pages 451 to 469 (1992)).
Recent reviews on the use of templates and the corresponding structures produced, as well as the mechanisms of structure direction have been produced by Barrer et al . , Zeolites , Vol. 1, 130 - 140, (1981); Lok et al . , Zeolites , Vol. 3, 282 - 291, (1983); Davis et al . , Chem Mater . , Vol. 4, 756 - 768, (1992) and Gies et al . , Zeolites , Vol 12, 42 - 49, (1992). For example, U. S. Pat. No. 3,702,886 teaches that an aluminosilicate gel (with high Si/Al ratio) crystallized in the presence of quaternary tetrapropyl ammonium hydroxide template to produce zeolite ZSM-5. Other publications teach the use of different organic templating agents and include; U. S. Pat. No. 3,709,979, wherein quaternary cations such as tetrabutyl ammonium or tetrabutyl phosphonium ions crystallize ZSM-11 and U. S. Pat. No. 4,391,785 demonstrates the preparation of ZSM-12 in the presence of tetraethyl ammonium cations. Other prior art teaches that primary amines such as propylamine and i- propylamine (U. S. Pat. No. 4,151,189), and diamines such as diaminopentane, diaminohexane and diaminododecane (U. S. Pat. No. 4,108,881) also direct the synthesis of ZSM-5 type structure. Hearmon et al (Zeolites , Vol. 10, 608 -611, (1990)) however, point out that the protonated form of the template molecule is most likely responsible for the framework assembly.
In summary, most of the zeolites and molecular sieve frameworks taught in the prior art are assembled by using quaternary ammonium cations or protonated forms of amines and diamines as templates.
The- need for new and useful types of stable frameworks and the need to expand the uniform pore size into the esopore region allowing the adsorption and discrimination of much larger molecules, has driven the search for organic structure-directing agents that will produce these new structures. In the prior art however, molecular sieves possess uniform pore sizes in the microporous range. These pore sizes and therefore the molecular sieving abilities of the materials are predetermined by the thermodynamically favored formation of framework windows containing 8, 10 and 12 I-atom rings. The largest pore size zeolites previously available were the naturally occurring faujasite (pore size 0.74 nm) or synthetic faujasite analogs, zeolites X and Y with 0.8 nm pore windows (Breck, D. W. , Zeolite Molecular Sieves : Structure, Chemistry and Use; Wiley and Sons; London, pages 1 ' to 100 (1974)). The innovative use of aluminophosphate gels has allowed the synthesis of new large pore materials. Thus, an 18 I- ato ring aluminophosphate molecular sieve; VPI-5 (Davis et al . , Nature , Vol. 331, 698 - 699, (1988)) was produced and found to consist of an hexagonal arrangement of one dimensional channels (pores) of diameter ~ 1.2 nm. A gallophosphate molecular sieve cloverite, with pore size of 1.3 nm was reported by Estermann M. et al (Nature , Vol 352, 320 - 323, (1991)), while recently, Thomas J. M. et al (J. Chem . Soc. Chem . Commun . , 875 - 876, (1992)) reported a triethyl ammonium cation directed synthesis of a novel 20 l-atom ring aluminophosphate molecular sieve (JDF-20) , with uniform pore size of 1.45 nm (calculated from lattice parameters) . A vanadium phosphate material was very recently reported with 1.84 nm lattice cavity (Soghmonian et al . , Agnew. Chem . Int . Ed . Engl . , Vol. 32, 610 - 611, (1993)). However, the true pore sizes of the latter two materials are unknown since sorption data were not made available and furthermore, these materials are not thermally stable.
In summary, in spite of significant progress made toward the preparation of large pore size materials, thermally stable molecular sieves are still only available with uniform pore sizes in the microporous range.
A recent breakthrough in the preparation of mesoporous silica and aluminosilicate molecular sieves was disclosed in U. S. Pat. Nos. 5,098,684; 5,102,643. The class of mesoporous materials (denoted as M41S) claimed in this prior art was found to possess uniform and adjustable pore size in the range 1.3-10.0 nm. These materials exhibited framework wall thickness from 0.8 to 1.2 nm and elementary particle size generally greater than 50.0 nm. By varying the synthesis conditions, M41S materials with hexagonal (MCM-41) , cubic (MCM-48) or layered morphologies have been disclosed (Beck et al . , J. Am . Chem . Soc , Vol. 114, 10834-10843, (1992)). The mechanism proposed for the formation of these materials involves strong electrostatic interactions and ion pairing between long chain quaternary alkyl ammonium cations, as structure directing agents, and anionic silicate oligomer species (U.S. Patent No. 5,098,684). Recently, Stucky et al (Nature , Vol. 368, 317-321 (1994)) extended this assembly approach by proposing four complementary synthesis pathways. The direct co-condensation of anionic inorganic species (I") with a cationic surfactant (S+) to give assembled ion pairs (S+ I") , for example MCM-41, was described as Pathway 1. The charge reversed situation with an anionic template (S~) being used to direct the assembly of cationic inorganic species (I+) to ion pairs (S~, I+) was Pathway 2. Hexagonal iron and lead oxide and lamellar lead and aluminum oxide phases have been reported using Pathway 2 (Stucky et al . ibid. ) . Pathways 3 and 4 involve the mediation of assemblies of surfactants and inorganic species of similar charge by oppositely charged counterions (X"= Cl" , Br", or M+= Na+, K+) . The viability of Pathway 3 was demonstrated by the synthesis of hexagonal MCM-41 using a quaternary alkyl ammonium cation template under strongly acidic conditions (5 - 10 mol L"1 HCI or HBr) in order to generate and assemble positively charged framework precursors (Stucky et al. ibid) . Pathway 4 was demonstrated by the condensation of anionic aluminate species with an anionic template (Ci2H250P03~) via alkali cation mediated (Na+, K+) ion pairing, to produce a lamellar Al(OH)3 phase. Pinnavaia et al . (Nature , Vol 368, 321-323, (1994)) reported the preparation of a templated mesoporous silica and a Ti- substituted analogue by the acid catalyzed hydrolysis of an inorganic alkoxide precursor in the presence of primary ammonium ions. All of the aforementioned synthetic pathways involve charge matching between ionic organic directing agents and ionic inorganic precursors. The template therefore, is strongly bound to the charged framework and difficult to recover. For example, in the original Mobil patent (U. S. Pat. No. 5, 098, 684) the template was not recovered, but burned off by calcination at elevated temperature. Template removal of anionic surfactant (Pathway 2) has however, been demonstrated by ion-exchange with low pH acidic cation donor solutions (U. S. Pat. No. 5,143,879). Template-halide pairs in the framework of acidic Pathway 3 materials can be displaced by ethanol extraction (Stucky et al . ibid) . Thus, ionic template recovery is possible, provided that exchange ions or ion pairs are present during the extraction process.
Most recently, the formation of mesoporous molecular sieves via a new route (Pathway 5) was proposed by Pinnavaia et al . (Science , Vol. 267, 865-867, (1995)). In this method, the self assembly of micelles of neutral primary amines (S°) and neutral inorganic alkoxide precursors (1°) was based upon hydrogen bonding between the two components. The new approach (S°, I*) taught in that prior art afforded mesostructures with greater wall thicknesses, smaller particle sizes and complimentary framework-confined mesoporosities relative to Pathway l and 3 materials. The new materials however, provided several advantages over the materials taught in the prior art. Greater wall thicknesses are desired in order that the thermal and hydrothermal stabilities of the materials may be improved (Coustel et al . , J . Chem . Soc . Chem . Commun . , 967-968, (1994)). Small particle sizes allow for greater volumes of textural mesoporosity in turn leading to greater access, via mass transport through the textural pores, to the framework-confined pores, thereby improving the overall performance of the adsorbent (Pinnavaia et al . , ibid; Chavin et al . , J . Catal . , Vol. Ill, 94-105, (1988)). In addition, owing to the weak template-framework interactions, Pathway 5 allowed for the facile solvent extraction of the template, removing the need for cation donors or ion pairs.
The terms framework-confined and textural porosity are herein defined. Framework-confined uniform pores are pores formed by the nucleation and crystallization of the framework elementary particles and are typically highly regular cavities and channels confined by the solid framework. The size of these cavities and channels is predetermined by the thermodyna ically favored assembly routes. Textural porosity is that which can be attributed to voids and channels between elementary particles and/or aggregates of such particles (grains) . Each elementary particle in the case of molecular sieves is composed of a certain number of framework unit cells each in turn containing framework-confined uniform pores. Textural porosity is formed during crystal growth and segregation or during subsequent thermal treatment or acid leaching. The size of the textural pores is determined by the size, shape and the number of interfacial contacts of these particles or aggregates. Thus, the size of the textural pores is generally one or two orders of magnitude larger than that of the framework-confined pores and is proportional to the elementary particle size.
One skilled in the arts of powder X-ray diffraction (XRD) , Scanning Electron Microscopy (SEM) , Transmission Electron Microscopy (TEM) and adsorption/desorption can determine the existence of and differentiate between framework-confined and textural mesoporosities. The crystallographic distance between repeat units in the elementary particles and some information about the arrangement of such repeat units can be obtained from XRD. Particle sizes and shapes and preliminary information regarding textural mesoporosity can be established by SEM and TEM. Analysis of the N2 or Ar adsorption-desorption isotherms of the solid material can indicate both framework-confined and textural mesoporosities. Textural mesoporosity is evidenced by the presence of a Type IV isotherm exhibiting a well defined hysteresis loop in the relative pressure region Pj/ P0 > 0.5 (Sing et al . , Pure Appl . Chem . , Vol. 57, 603-619, (1985)). This behavior is common for a variety of para-crystalline materials and freeze-dried pillared layered solids. Framework- confined mesoporosity is characterized by a sharp adsorption uptake followed by a hysteresis loop in the 0.3-0.4 Pj/ P0 region. This hysteresis corresponds to capillary condensation in the framework-confined mesopores. In MCM-41 materials, the large particle size precludes the formation of textural mesoporosity and a corresponding ratio of textural to framework-confined mesoporosity approaching zero is calculated. In materials prepared via Pathway 5, the elementary particle size was smaller (< 40.0 nm) producing a ratio of textural to framework-confined mesoporosity greater than 0.2.
In summary, according to the prior art, the molecular sieve materials and preparation techniques provide several distinct disadvantages and advantages: i) The prior art of Pathways l through 4 teaches the use of charged surfactant species as templates in order to assemble inorganic frameworks from charged inorganic precursors. These charged templates are generally expensive, strongly bound to the inorganic framework and therefore difficult to recover. Additionally, many of these templates such as the most commonly used quaternary ammonium cations are highly toxic and environmentally undesirable. In the prior art of Pathways 1 to 4, the template was removed from the structure by either calcining it out or by ion-exchange reactions. Pathway 5 prior art templates are also highly toxic and environmentally unsuitable, but may be removed through environmentally benign ethanol extraction and thereby recovered and reused.
ii) Prior art mesoporous molecular sieves produced by Pathways 1-4 exhibit small pore- wall thicknesses (0.8-1.2 nm) , to which may be related the very poor thermal and hydrolytic stabilities of the materials taught in that prior art, while Pathway 5 provides materials with greater wall thicknesses (2.0 nm) and thereby greater stabilities. This contrast is ascribed to the differences in the self- assembly mechanisms with the former prior art relying on strong ionic interactions and the latter relying on weaker H-bonding interactions.
iii) The prior art of Pathways 1-4 produces materials with low textural to framework- confined mesopore ratios, while the prior art of pathway 5 exhibits higher textural to framework-confined mesopore ratios and therefore, theoretically better access to the framework pores. However, the very small elementary particle size means that few pores are contained within any one particle, thereby theoretically producing lower specific activities.
There is a need for new methods of preparation of new materials of these types, cost reductions, ease of recoverability and environmental compatibility in the template and inorganic precursors has lead to the development of a new synthetic method to be described herein.
OBJECTS OF THE INVENTION
It is therefore an object of the present invention to provide a new approach to the design and synthesis of crystalline inorganic oxide compositions with well defined mesoporosity, and controlled elementary particle size. Further, it is an object of the present invention to provide inexpensive templates, precursors and methods while avoiding high energy demanding and costly hydrothermal syntheses. Further, it is an object of the present invention to provide a template system that allows for facile recovery and thereby recycling of the template from the condensed inorganic structure via solvent extraction. Further, it iε an object of the present invention to provide a template system that affords mesoporous materials through lower cost, lower toxicity than either quaternary ammonium or amine surfactants and template biodegradability. Finally, it is an object of the present invention to provide for the preparation of well defined non-layered mesoporous structures of oxide materials derived from metals other than silicon, that are not accessible through the prior art. These and other objects will become increasingly apparent by reference to the following description and the drawings. Brief Description of the Drawings
Figures IA and IB are graphs showing representative X-ray powder diffraction patterns of MCM- 41 (Fig. IA) Beck et al . , J . Am . Chem . Soc . , Vol. 114, 10834 - 10843, (1992) and HMS (Fig. IB) Pinnavaia et al . (Science , Vol. 267, 865 - 867, (1995) products .
Figures 2A and 2B are graphs showing representative 2 adsorption-desorption isotherm for MCM- 41 (Fig. 2A) Beck et al . , J . Am . Chem . Soc , Vol. 114, 10834 - 10843, (1992) and HMS (Fig. 2B) Pinnavaia et al . (Science , Vol. 267, 865 - 867, (1995) products .
Figure 3 is a graph showing the X-ray powder diffraction patterns of the as synthesized (curve A) and calcined (curve B) MSU-1 products from Example 3.
Figure 4 is a graph of the N2 adsorption-desorption isotherm for the calcined MSU-1 product from Example 3. Figure 4A is a graph of the corresponding Horvath-Kawazoe framework-confined mesopore size distribution curve.
Figure 5 is a graph of the X-ray powder diffraction patterns of the as synthesized (curve A) and calcined (curve B) MSU-3 products from Example 16.
Figure 6 is a graph of the N2 adsorption-desorption isotherm for the calcined MSU-3 product from Example 16. Figure 6A is a graph of the corresponding Horvath-Kawazoe framework-confined mesopore size distribution curve.
Figure 7 is a graph of the X-ray powder diffraction patterns of the as-synthesized (curve A) and calcined (curve B) MSU-3 Alumina products of Example 19. Figure 8 is a graph of the N2 adsorption-desorption isotherm for the calcined MSU-3 Alumina product from Example 19. Figure 8A is a graph of the corresponding Horvath-Kawazoe framework-confined mesopore size distribution curve.
Figure 9 is a representative chemical structure of a secondary fatty alcohol poly-ethoxylate (Tergitol™) .
Figure 10A is a representative chemical structure of an alkyl phenol poly-ethoxylate (Triton X™). Figure 10B is Igepal RC-760. Figure 11 is a representative chemical structure of a fatty acid ethoxylate.
Figure 12 is a representative chemical structure of an ethylene oxide-propylene oxide-ethylene oxide tri-block co-polymer (Pluronic 64L™) . Figure 13 is a representative chemical structure of the ethylene diamine propylene oxide-ethylene oxide derivative (Tetronic™) . Figure 14 is a representative chemical structure of a primary fatty amine poly-ethoxylate.
Figure 15 is a representative chemical structure of a fatty acid PPO/PEO block co-polymer. Figure 16 is a representative chemical structure of a sorbitan ethoxylate. DESCRIPTION OF PREFERRED EMBODIMENTS
The present invention relates to a synthetic, semi-crystalline inorganic oxide composition having at least one resolved x-ray reflection corresponding to a lattice spacing of 3 to 10 nm, a framework wall thickness of at least about 2 nm, framework confined pores between about 2 and 10 nm, an elementary particle size greater than 500 nm, and a specific surface area of 300 to 1200 square meters per gram.
The present invention also relates to a synthetic, semi-crystalline inorganic oxide composition prepared by reacting in a reaction mixture a nonionic poly(alkylene oxide) derived surfactant as a template (N°) and a neutral inorganic oxide precursor (1°), followed by hydrolysis and crosslinking of the inorganic oxide precursor to provide the composition.
The present invention further relates to a method for the preparation of a synthetic semi- crystalline inorganic oxide composition which comprises: providing a mixture of (i) a neutral inorganic oxide precursor (1°) containing at least one element selected from the group consisting of di-, tri-, tetra-, penta- and hexavalent elements and mixtures thereof; (ii) a non-ionic poly(alkylene oxide) surfactant (S°) as a template; and (iii) a hydrolyzing agent; mixing the solution to form a gel containing the composition; separating at least some of the hydrolyzing agent and the surfactant to form the composition; and optionally calcining the composition.
The present invention provides to a new route to the synthesis of semi-crystalline materials with well defined framework-confined mesopores and large elementary particle size. The compositions produced in the current invention are distinguished from those of the prior art by the virtue of the method of preparation of the present invention, the subsequent architecture of the mesoporous structure and the range of templated metal oxides other than silica that is afforded by this route. Formation of the mesoporous network is accomplished by interaction (complexation and/or hydrogen-bonding) between a nonionic polyethylene oxide based surfactant template and neutral inorganic precursors, followed by hydrolysis and subsequent condensation of the inorganic reaction product under either ambient or elevated temperature reaction conditions and the subsequent removal of the solvent phase and the template.
The present invention particularly provides a preferred totally nonionic (N° 1°) route to the preparation of quasi-crystalline oxide compositions comprising (a) preparing a homogeneous solution or emulsion of a nonionic polyethylene oxide-based surfactant (N°) by stirring, sonicating or shaking at standard temperature and pressure (STP) ; (b) addition of one or more neutral inorganic precursors with stirring at standard temperatures and pressures (STP) to the emulsion of step (a) at ambient temperature to form a precipitated semi-crystalline product; (c) separating the solvent and the hydrolyzing agent . from the precipitated product by filtration or centrifugation; (d) optionally calcining the quasi-crystalline product at 673°K to 873° K for at least 4 hours in air or (e) extracting the template through solvent extraction whereby the solvent is either water or ethanol.
The present invention thus provides a new route to inorganic oxide crystalline materials with uniform well defined framework-confined mesopores and controlled elementary particle size that can be utilized as adsorbents, catalysts and catalyst supports for the catalytic conversion of organic substrates. The present invention is distinguished from the prior art by the new preparative N' I" method used to obtain the mesoporous crystalline inorganic oxide materials, the pore morphology of the said materials and the range of templated mesoporous metal oxide materials that may be prepared by this method. According to the method of the present invention, the formation of the mesoporous structure is accomplished by interaction (complexation and/or hydrogen bonding) between template molecules within micellar aggregates of nonionic polyethylene oxide-based templates and neutral inorganic oxide precursors, followed by hydrolysis and cross linking of 10^. units, where I is a central metallic or non-metallic element coordinated to x oxygen atoms (2 < x < 6) . This interaction is most likely to occur between an I-OH unit and the terminal OH function of each surfactant molecule, or between the I-OH unit and the array of lone pair electrons on the template polar segment. The polar segment of the template in the present invention is flexible and appears to act in the fashion of a crown ether complexing a I-OH unit, thereby stabilizing a site of nucleation for subsequent condensation of the mesoporous quasi-crystalline inorganic oxide product, although the inventors do not want to be bound to any particular theory.
The inventors know of no prior art teaching the preparation of micro-, meso-, or macro-porous inorganic oxide compositions by such a nonionic N° 1° mechanism involving crystallization of inorganic oxide precursors around well defined micelles of nonionic surfactants. Specifically, the present result is achieved by using micelles of a nonionic surfactant to template and assemble a neutral inorganic reactant precursor into a mesoporous framework structure. Complexation and/or hydrogen bonding between the template and the reagent is believed to be the primary driving force of the assembly of the framework in the current invention. The aforementioned method consists of the formation of a solid precipitate by the mixing of a solution or emulsion of a polyethylene oxide-based nonionic surfactant, with a neutral inorganic oxide precursor. The latter being an inorganic alkoxide, in the presence of a hydrolyzing agent, followed by aging and crystallization under stirring, εonication or shaking at ambient temperature for at least 16 h. The template may be recovered by extraction with ambient temperature alcohol or hot water whose temperature exceeds the cloud point of the template. Complete removal of the remainder of the template and final crosslinking of the 10^ framework is accomplished by calcination in air at temperatures between 673° K and 923° K for at least 4 h.
The molar ratio of inorganic oxide precursor to surfactant is between 10:1 and 20:1 depending upon the specific template being used. The concentration of surfactant in solution is between 0.003 mol L"1 and 0.4
• mol L"1 again depending upon the surfactant being used and the pore size desired. The crystalline inorganic oxide composition of the present invention in its calcined state has the desired composition: nR-E0/AvBwCxDy0z
wherein R-EO is at least one of a selection of nonionic alkyl, or alkyl/aryl polyethylene oxide or polyethylene oxide-polypropylene oxide-polyethylene oxide block co- polymer molecules; A is at least one optional trivalent element such as Al, Ga or Fe; B is at least one optional tetravalent metallic element such as Ge, Ti, V, Sb or Zr; C is the optional tetravalent element Si; D is an optional pentavalent or hexavalent element such as V, W or Mo; O is oxygen and v, w, x, y and z are the molar stoichiometries of A, B, C, D and O respectively. In the calcined composition, n « 0, 0.001 < v < 2, O.OOl≤ w < 1, O.OOl≤ x < 1, 0.001 < y < 2 and 2 < z < 6.
The semi-crystalline mesoporous materials of the present invention may be described as being formed by hydrogen-bonding between the terminal hydroxyl function or the array of lone pair electrons on the O atoms of the ethylene oxide units of the template molecules and any M-(OR)JC compound. This H-bonding is followed by hydrolysis and subsequent condensation and cross-linking of 10^ units under ambient or elevated temperature reaction conditions. Specifically, the said method comprises the formation of an organic/inorganic solution by the mixing of an aqueous or alcoholic solution of nonionic surfactant with the desired amount of Si-alkoxide, M-Si double alkoxide, mixtures of Si- and M-alkoxides or pure M-alkoxides (where M= Al, Ca, Cr, Fe, Ga, Ge, Mg, Mo, Nb, Sb, Sn, Ti, V, W, or Zr) , followed by aging and subsequent precipitation under stirring for at least 16 h.
The composition of this invention is characterized by at least one strong XRD peak at a basal (dI00) spacing of at least 3.0 nm or larger. The compositions are also distinguished in part from those of the prior art, specifically MCM-41 materials, by lower crystallographic regularity and larger framework wall thicknesses (> 2.0 nm) . The composition of the present invention is distinguished from the prior art of HMS materials by lower crystallographic regularity, the presence of longer range pore structures, substantially larger particle sizes and near zero textural mesoporosity.
In the present invention, the template may be removed from the condensed reaction products in at least three different ways: (i) air drying followed by calcination in air or in inert gas preferably at a temperature from 673° K to 923° K for 4 to 6 h; (ii) solvent extraction of the template from the air dried material using alcohol or hot water; (iii) combination of (i) and (ii) .
Procedure (i) results in the complete oxidation and thereby decomposition of the occluded template. The current invention improves on the environmental impact of the prior material preparation art, as the oxidation products of quaternary ammonium and amine based surfactant templates described in the prior art, include environmentally undesirable N0χ gases, while the oxidation products of polyethylene oxide based surfactants are the more environmentally compatible H2O and CO2 gasses. Procedure (ii) allows the template to be recovered and subsequently recycled and reused. If the template is removed by procedure (ii) , the product should be calcined in air or inert gas to remove the final traces of the template and to complete the cross linking of the mesostructure.
After calcination, the present compositions may be used as adsorbents, molecular sieves, catalysts and catalyst supports. When the calcined product is appropriately substituted or subsequently impregnated as taught in Ger. Pat. (DD) No. 286,522, with the correct amount of a catalytically active element, such as Al, Ag, Cu, Cr, Pt, Pd, Ti, V, Zr or mixtures thereof, or when intercalated with transition metal inorganic metallocycles, it can be used as a catalyst for cracking, hydrocracking, hydrogenation-dehydrogenation, isomerization or oxidations involving large and small organic substrates.
The new synthesis method of the compositions of this invention involves the preparation of solutions or emulsions of a surfactant template compound and reaction of this solution with liquid di-, tri-, tetra-, penta- or hexa-valent metal or metalloid hydrolyzable reagents in the presence of a hydrolysing agent under stirring, sonication or shaking, until formation of the desired precipitated product is achieved and recovering the solid material. The template is described more particularly as a nonionic (neutral) polyethylene oxide based molecule that would possess one of many different molecular structures and the hydrolysing agent is described as water.
There are four basic types of surfactant molecules that are described herein. The alkyl- polyethylene oxides; such as are related to the Tergitol 15-S-JΠ products (Figure 9) are derived from the reaction of ethylene oxide with a primary or secondary alcohol and possess the basic formula R/?-0(E0)mH where R is a hydrophobic alkyl group with n ranging from 1 to at least 20 carbon atoms, EO is a hydrophilic ethylene oxide unit (OCH2CH2) with m ranging from about 7 to 40, preferably at least 20.
The alkyl-phenyl polyethylene oxides; such as Igepal-RC (Figure 10B) and Triton-X (Figure 10A) , possess the same range of structures as the alkyl- polyethylene oxides, with the exception that the primary (Igepal RC) , secondary or tertiary (Triton X) R group is bound to the EO units through a hydrophobic phenoxy group (PhO) . These molecules then, have the basic formula; R^-Ph-OfEOJ^H, preferably where is 8 to 10 and n is 8.
The polyethylene oxide (PEO) -polypropylene oxide (PPO) molecules; such as Pluronic (Figure 12) , are derived from the addition of hydrophobic propylene oxide to propylene glycol followed by the addition of hydrophilic ethylene oxide. They are defined as PEO - PPO^-PEO^ tri-block co-polymers wherein n is controlled by length to constitute from 10% to 80% by weight of the final product. The order of the PEO and PPO units may be reversed in order to p *roduce the PPO tn-PEO n-PPO tn triblock co-polymers; Pluronic-R. Preferably n is 30 and m is 13.
A fourth basic PEO based surfactant type is derived by from the substitution of the hydrogens of ethylene diamine by ethylene oxide and propylene oxide units to form the X shaped, Tetronic, molecules (Figure 1 3 ) w i t h b a s i c f o r m u l a ; ((EO)Λ-(PO)w)2-NCH2CH2N-((PO)||I-(EO)Λ)2. The order of the PEO and PPO groups in these molecules may also be reversed to form Tetronic-R. Preferably m is 13 and n is 30.
The preferred preparation procedures of the said compositions comprise steps as follows:
(i) preparing a solution of the desired template under stirring, in a solvent that is either, water for the preparation of silicon dioxide, or alcohol for the preparation of metal oxide compositions from more reactive alkoxide precursors;
(ii) addition of the desired metal oxide precursor to the surfactant solution under stirring, sonication or shaking; (iϋ) preparation of a solution of the hydrolysing agent in the alcohol used in step (i) . The hydrolysing agent is water; (iv) very slow addition of the hydrolysing agent to the template/inorganic precursor solution under stirring. (iii and iv are not required if templated silica is being prepared) ;
(v) aging of the total solution for at least 16 h up to 48 h at room temperature; (vi) separation of the product from the supernatant liquid by filtration or centrifugation;
(vii) air drying of the product followed by heat treatment at 373° K; (viii) separation of the template by extraction with either ethanol or hot water or a mixture thereof; and (ix) calcination of the te plated product in air or inert gas at between 473° K and 923° K for 0.5 h for extracted compositions or for 4 to 6 h for unextracted products. The inorganic oxide precursors are single or double metal alkoxide compounds. The list of preferred alkoxides includes but not exclusively: aluminum(III) ethoxide, aluminum(III) isopropoxide, aluminum(IIl) n-, sec- or tert- butoxide, antimony(III) isopropoxide, antimony(III) n-butoxide, calcium(II) ethoxide, calcium(II) isopropoxide, calcium(II) tert- butoxide, chromium(IV) isopropoxide, chromium(IV) tert- butoxide, copper(II) methoxyethoxide, gallium(III) isopropoxide, germanium(IV) ethoxide, germanium(IV) isopropoxide, indium(III) isopropoxide, iron(III) ethoxide, iron(III) isopropoxide, iron(III) tert- butoxide, lead(II) isopropoxide, lead(II) tert- butoxide, magnesiu (II) ethoxide, manganese(II) isopropoxide, molybdenu (V) isopropoxide, niobium(V) ethoxide, silicon(IV) methoxide, silicon(IV) ethoxide, silicon(IV) propoxide, silicon(IV) butoxide, silicon(IV) hexoxide, strontium(II) ethoxide, tin(IV) isopropoxide, titanium(IV) ethoxide, titanium(IV) propoxide, titanium(IV) isopropoxide, titaniu (IV) butoxide, titanium(IV) octadecoxide, tungsten(VI) ethoxide, tungsten(VI) isopropoxide, vanadium(V) triisopropoxide oxide, zinc(II) isopropoxide, zinc(II) tert- butoxide, zirconium(IV) n- propoxide, zirconium(IV) isopropoxide, zirconium(IV) butoxide, zirconium(IV) tert- butoxide, aluminum ( III ) silicon ( IV) alkoxide , titanium(IV)silicon(IV) polyethoxide and other mixtures of the aforementioned alkoxide compounds. The alcohols used in step (i) of the preparation art correspond to the alcoholate ligand from which the metal alkoxide is derived. The alcohols thus preferred are methanol, ethanol, n- and isopropanol and n- , sec- , tert- , butanol. The alcohols contain 1 to 4 carbon atoms. Said mixed metal alkoxides are obtained through proprietary preparations or by reaction of desired metal alkoxides in desired molar ratios under reflux (433° K) for 3 - 4 h. The said reacting of the inorganic precursor and the template solution is achieved at room temperature (298° K to 303° K) under stirring for at least 16 h.
Aging of the reaction mixture may be achieved at room temperature either under stirring, sonication or shaking or by being left to stand for at least 24 h.
More specifically, the reacting occurs through complexation or H-bonding between a neutral nonionic template and neutral inorganic oxide precursors, followed by hydrolysis and crosslinking of IOA. units at ambient or elevated reaction temperatures. The complexation, or H-bonding most likely occurs between the terminal OH group of the template molecules and the hydrolyzable ligand on the inorganic precursor molecule, or between the inorganic precursor molecule and the electron lone pairs of the ethylene oxide groups in the hydrophilic head group of the template molecules.
The calcination is performed in a temperature controlled oven by heating in air at a rate of 2° K min"^ to a final temperature between 673° K and 923° K for at least 30 min, preferably 4 to 6 h.
The outstanding features of the present invention are:
(i) The use of nonionic (N°) polyethylene oxide based templates, to assemble mesoporous metal oxide framework structures; (ii) The use of neutral metal alkoxide inorganic oxide precursors (1°) ; (iii) The reaction of solutions of inorganic oxide precursors under reflux for 3-4 h in order to obtain polymerized I-O-I' species; (iv) The use of hydrogen bonding or non- electrostatic complexation as the driving force for the neutral N° 1° assembly of the nonionic template and the neutral inorganic oxide precursor species; (v) The use of ambient reaction conditions to prepare the templated product; (vi) The recovery and recycling of the template through simple solvent extraction from the product. (vii) The use of low cost, non-toxic, biodegradable and low energy requirement preparation art.
The templated inorganic oxide compositions of the present invention can be combined with other components, for example, zeolites, clays, inorganic oxides or organic polymers or mixtures thereof. In this way adsorbents, ion-exchangers, catalysts, catalyst supports or composite materials with a wide variety of properties may be prepared. Additionally, one skilled in the art may impregnate or encapsulate transition metal macrocyclic molecules such as porphyrins or phthalocyanines containing a wide variety of catalytically active metal centers.
Additionally, the surfaces of the compositions can be functionalized in order to produce catalytic, hydrophilic or hydrophobic surfaces. This functionalization can be introduced during the synthesis procedure by replacing the metal alkoxide precursor with alkyl metal alkoxide [MR(OR)A._,] reactants, or metal carboxylate reactants. The surfaces may be functionalized after synthesis by reaction with various chlorides, fluorides, sylisation or alkylating reagents.
The following are specific examples of the present invention intended to illustrate but not to limit the invention.
Examples 1-6 The desired amount of one of a range of Tergitol 15-S templates, with varying hydrophilic head group lengths, was dissolved in one hundred milliliters of deionized H2O under stirring at room temperature, until a homogeneous solution was obtained. The appropriate quantity of Si(OC2H5)4 was added at once to the above template solution under stirring at room temperature. The reaction stoichiometry expressed in terms of moles per mole Si correspond to the following: 0.1 mol R_-(OCH2CH2)„,OH 50 mol H20
The resulting solution was stirred and aged for 16 h at room temperature. During the initial 1-3 h stirring, white templated products were observed as solid precipitates. The products were separated from the mother liquor through filtration or centrifugation and dried at room temperature. The template waε then removed through calcination in air at 923° K for 4 h.
The X-ray powder diffraction (XRD) patterns of all the samples were obtained with a Rigaku Rotaflex (Japan) diffractometer equipped with a rotating anode and CuKa radiation (1 = 0.15148 nm) . The diffraction data were recorded by step scanning at 0.02 degrees of 2 theta, where theta is the Bragg angle and photon counting time of 1 εec step" . The d-spacings of the X- ray reflections of the samples were calculated in nm. Transmission electron micrographs were obtained on a JEOL JEM 100CX II (Japan) electron microscope by observing unmodified particles supported on carbon coated copper grids (400 mesh) . The sample images were obtained using an accelerating voltage of 120 kV, a beam diameter of approximately 5mm and an objective lens aperture of 20 mm. The pore structures of said compositions were characterized by measuring N2 adsorption-desorption isotherms using a Coulter 360CX (Florida) sorptometer. Isotherms were recorded at 70° K using a standard continuous sorption procedure. Before measurement, each sample was outgassed overnight at 323° K and 10"6 Torr. The specific surface area (SBET, m2 g"1) and the total pore volumes (Vt, mL g ), which were consistent with mesoporous structures, were calculated from the adsorption iεothermε following IUPAC recommendationε (Sing et al., Pure Appl . Chem . , 57, 603- 619 (1985)). The pore size distributions of the compositions were calculated following the method of Horvath and Kawazoe (G. Horvath and K. J. Kawazoe, J . Chem . Eng . Jpn . , 16, 470-475 (1983)) . Thermogravimetric analyses of the samples were performed under a flow of dry N gas on a CAHN εystem thermogravimetric gas (TG) analyzer using a heating rate of 5° K min . The amounts of each surfactant used in the examples 1-6, together with the corresponding physico-chemical parameters are summarized in Table 1.
TABLE 1 The Material designation is MSU-1.
Example Template Amount d100 HK pore BET formula of (nm) diameter Surface template (nm) area used. (mV1
(g)
1 Tergitol 5.15 4.4 2.2 900 15-S-7
2 Tergitol 5.84 5.2 2.5 1010 15-S-9
3 Tergitol 7.38 4. 1 3. 1 1005 15-S-15
4 Tergitol 8.77 5.4 2.6 640 15-S-15
5 Tergitol 10.79 7.8 4.8 605 15-S-20
6 Tergitol 15.58 7.9 4.5 525 15-S-30
Examples 7-11
In Examples 7 to 9 the concentration of the template in aqueous solution was varied in order to modify the effective pore size diεtribution. This teaching is not apparent in synthetic strategies of the prior art (U. S. Pat. 5,098,684, 5,102,643 and 5,057,296).
To 100 milliliters of deionized water was added 1%, 5%, 10% 15% and 25% by weight of surfactant per weight of solvent under stirring at room temperature. To these solutions was added the appropriate amount of Si(OC7H<j) so that the Si : surfactant molar ratio was 10:1. The relative reaction εtoichiometry with respect to Si and surfactant remained constant for each example, while the reaction stoichiometry of water per mole of Si changed with each preparation. The reaction εtoichiometries corresponded to the following: Example 7: Example 8: 0.1 mol R.-(OCH,CH,)lsOH 0.1 mol R„-(OCH,CH:)15OH
492 mol HO. 98 mol H,O.
Example 9: Example 10:
0.1 mol R.-(OCH,CHj),5OH 0.1 mol R.-(OCH2CH2)lsOH
33 mol H,O. 29 mol H,O. Example 11.
0.1 mol R„-(OCH:CH:)l5OH 20 mol H:O.
The resulting precipitate was aged under stirring at room temperature for 16 h to obtain the templated product. The product was then transferred into sealed containers and heated at 373° K for a further 16 h. The crystalline product was then filtered, dried at room temperature and calcined at 923° K for 4 h to remove the occluded template. The physico-chemical properties of the calcined templated products are described in Table 2.
TABLE 2 The Material designation is MSU-1.
Example Template Amount d100 HK pore BET formula of (nm) diameter Surface
Template (nm) area used (g) (M2 g' 1)
7 Tergitol 1.0 4.3 2.0 655 15-S-15
8 Tergitol 5.0 3.6 2.0 465 15-S- 15
9 Tergitol 10.0 3.9 2.0 515 15-S-15
10 Tergitol 15.0 4.0 2.2 890 15-S-15
11 Tergitol 25.0 5.5 2.5 700 15-S-15
Examples 12 and 13 The following examples were prepared to confirm the ability of alkyl-phenyl polyethylene oxide surfactants to act as templating agents for mesostructure formation in the manner of the present invention.
Aqueous solutions of Triton-X 100 and Triton-X 114 were prepared as in the manner of the preparation art of Exampleε 1 through 11. The concentration of template waε 7.5% weight of surfactant per weight of solvent. Si(OC-,H5) was added at once in the appropriate amount so that the Si : surfactant molar ratio was 10 : 1 as in the preparation art of Examples 1 through 11. The remainder of the synthesis was identical to the preparation art described in Examples 1 through 6. The calcined templated products exhibited XRD patterns, BET surface areas, HK pore size distributions and pore wall thicknesses as described in Table 3.
TABLE 3
The Material designation is MSU-2.
Figure imgf000031_0001
Examples 14-16
Examples of the present preparation art are presented for compositions prepared by templating with various concentrations of the nonionic surfactant Pluronic 64L. This surfactant differs from those discussed in the prior examples in that the hydrophobic part of the surfactant molecule is baεed on propylene oxide units. The molecule is defined as a polyethylene oxide-polypropylene oxide- polyethylene oxide tri-block co-polymer.
Aqueous solutionε of Pluronic 64L with concentrationε of 5%, 10% and 15% weight of surfactant per weight of solvent were prepared as in the preparation art of the previous examples 1 through 13. Si(OC H<5)4 was added at once in the appropriate amount εo that the Si : surfactant molar ratio was 20 : 1. The remainder of the preparation was identical to the preparation art of examples 7 through 11. The calcined templated products exhibited physico-chemical properties as described in Table 4. TABLE 4 The Material designation is MSU-3.
Example Template Amount "to HK pore BET formula* of (nm) diameter Surface template (nm) area used.(g) (m2g-')
14 (PEO),3. 5.0 7.5 8.5 1090 (PPO)30. (PEO)13
15 (PEO)I3. 10.0 7.1 6.7 1150 (P O)3c
Figure imgf000032_0001
16 (PEO)„. 15.0 6. 1 5.8 1 190 (PPO)3 (PEO)„
Example 17
Example 17 demonstrateε the viability of recovering the template from the inorganic εtructure prior to calcination through solvent extraction.
A 0.05 g quantity of the air dried and heat treated at 373° K but non-calcined product of Example 14 is examined by thermogravimetric analysis (TGA) under N2 gas flow at a heating rate of 5° K C min"1. One gram of the same air dried and non-calcined product of Example 14 iε εtirred in 100 milliliters of hot water (~ 363° K ) for 3 h. The product is then filtered and washed with a εecond and a third 100 milliliter volumes of hot water. The filtered product iε then dried at room temperature for 16 h. Thiε product is then analyzed by TGA and vibrational spectroεcopy.
Examples 18 and 19
Thiε example de onεtrates the ability of the present invention to prepare .compositions whereby framework Si atoms have been substituted by different metal atoms, for example Ti.
A substituted or polymerized metal alkoxide compound is formed by reaction of Si(OC2H5)4 with Ti(OCH(CH3)2) such that the molar % of Ti for each composition was 0.5%, 1.0% and 5.0%. The appropriate amount of Ti(OCH(CH3)2) is dissolved in the appropriate quantity of Si(OC2H<j)4 under stirring. The resultant solution is then heated under reflux at the boiling point of the Si(OC2H5)4 (433° K) for 4 h. The solution is then cooled to room temperature and added to a solution of nonionic polyethylene oxide based surfactant in the appropriate ratio as taught in Examples 1 through 16. The preparation art then follows that of Examples 7 through 11. The physico-chemical properties of Zr- and Ti- substituted MSU-1 compositions are presented in Table 5.
TABLE 5
Material Example Template % d 100 HK BET designation formula Metal (nm) (nm) Sur¬ face area _(m2g
Zr-MSU-1 18 Cl l-15(E°)l2 5 4.9 3.0 950
Ti-MSU-1 19 Cl l-15(EO) 12 5 4.9 2.8 940
Examples 20-23
Thiε example describes the preparation art of nonionic surfactant templated mesoporous aluminum oxide.
The desired amount of Pluronic 64L was dissolved under stirring at room temperature in 50 milliliters of an alcohol corresponding to the alkoxide ligand of the aluminum alkoxide inorganic precursor, which in the present art, was sec-butanol. The appropriate amount of Al (OCH(CH3)CH,CHj), was then dissolved in that solution such that the Al : surfactant molar ratio was 10 : 1. No precipitation reaction was observed at this point. An aliquot of deionized H20 was dissolved in 10 milliliters of sec- butanol such that the H20 : Al molar ratio waε 2 : 1. This solution was added very slowly to the Al/surfactant solution under stirring at room temperature. Gel and precipitate formation were observed at this point. The solution was stirred for 4 h after which another 25 illiliterε of sec-butanol waε added to diεperse the gel. The reεultant composition was stirred until homogeneous then left to stand for 16 h. The product was filtered, washed once with ethanol, dried in air at room temperature, heat treated at 373° K for 16 h then calcined in air at 773° K.
The physico-chemical properties of Examples 20-24 are presented in Table 6.
TABLE 6
Material Ex. Template Amount "100 HK BET formula of (nm) pore Surface desig¬ template diamet area nation used.(g) er (mV1) (nm)
MSU-3 20 (PEO),-, 8.6 6.3 4.2 420
Alumina (PPO)30. (PEO),3
MSU-1 21 C . i- i5(EO)9 15 8.0 5.8 488
Alumina
22 C 1 5(EO) 12 14 n.o. 6.8 425
23 C i |.|5(EO)2o 14 n.o. 7.2 530
MSU-4 24 C ,8Ph(EO) 18 14 n.o. 8.0 420
Alumina
N.O. = Not observed in range 1-20° 2 theta.

Claims

WE CLAIM :
1. A synthetic, semi-cryεtalline inorganic oxide compoεition having at leaεt one reεolved x-ray reflection correεponding to a lattice εpacing of 3 to 10 nm, a framework wall thickness of at least about 2 nm, framework confined pores between about 2 and 10 nm, an elementary particle size greater than 500 n , and a specific surface area of 300 to 1200 square meters per gram.
2. A synthetic, εemi-cryεtalline inorganic oxide compoεition prepared by reacting in a reaction mixture a non-ionic poly(alkylene oxide) derived εurfactant aε a template (N°) and a neutral inorganic oxide precurεor (1°) , followed by hydrolyεiε and croεslinking of the inorganic oxide precursor to provide the composition.
3. The composition of Claim 2 wherein the template is removed from the compoεition.
4. The method of Claim 2 wherein the εurfactant haε a terminal hydroxyl group.
5. The compoεition of Claim 2 which has the composition: nR-E0/Aχ0y wherein R-EO is selected from the group consiεting of nonionic alkyl polyethylene oxide, alkyl and aryl polyethylene oxide, and polyethylene oxide- polypropylene oxide-polyethylene oxide block co- polymer moleculeε; A iε a metal atom; O is oxygen and x and y are the molar stoichiometries of A, and O such that in the composition when calcined, n is about 0, x is about 1, y is about 2.
6. The composition of Claim 2 which has the desired composition: nR-EO/AvBwSiχDyOz wherein R-EO is selected from the group consisting of nonionic alkyl polyethylene oxide, alkyl and aryl polyethylene oxide and polyethylene oxide- polypropylene oxide-polyethylene oxide block co- polymer molecules; A is at least one optional trivalent element selected from the group consisting of Al, Ga and Fe; B is at least one optional tetravalent metallic element selected from the group consisting of Ge, Ti, V, Sb and Zr; Si is silicon; D is optional and is a pentavalent or hexavalent element selected from the group consisting of V, W and Mo; O is oxygen and v, w, x, y and z are the molar stoichiometrieε of A, B, Si, D and O reεpectively, wherein in the composition when calcined, n is about 0, O.OOl≤ v < 2, 0.001 < w < 1, 0.001 < x < 1, 0.001 < y < 2 and 2 < z < 6.
7. The composition of Claim 2 having X-ray diffraction patternε with at leaεt one reflection correεponding to a lattice of between about 3 to 10 nm.
8. The compoεition of any one of Claimε 1 or 2 which after calcination, haε an N->, 0-, or Ar adεorption-deεorption iεother with a step at P/P0 between 0.2 and 0.6 and at leaεt one hyεteresiε loop.
9. The compoεition of Claim 8 wherein a ratio of textural to framework-confined mesoporosity aε determined by the N->, 07 or Ar adsorption isotherm, is about zero.
10. The compoεition of Claim 9 wherein the εaid compoεition haε a εpecific εurface area between o 500 and 1200 πr per gram.
11. The composition of Claim 2 wherein a molar ratio of nonionic surfactant to inorganic oxide precursor in the reaction mixture is between 0.05 and 0.2.
12. The composition of Claim 1 having an X- ray diffraction pattern selected from the group consiεting of Figureε 3 and 5.
13. The compoεitionε of Claim 1 having an N2 adεorption-desorption isotherms and Horvath-Kawazoe pore size distribution selected from the group consiεting of Figureε 4 and 6.
14. The composition of Claim 2 containing the template.
15. The composition of Claim 2 in which the template has been removed by calcination.
16. The composition of Claim 2 in which the template has been removed through solvent extraction.
17. The composition of Claim 1 having an X- ray diffraction pattern as εhown in Figure 7.
18. The compoεition of Claim 1 having N2 adεorption-deεorption isotherms and Horvath-Kawazoe pore size distribution as shown in Figure 8.
19. The compoεition of Claim 6 containing the template.
20. The composition of Claim 6 in which the template has been removed by calcination.
21. The compoεition of Claim 6 in which the template haε been removed through εolvent extraction.
22. The compoεition of any one of Claimε 1 or 2 in which at least one tranεition metal iε dispersed or impregnated in the pores, selected from the group consisting of Ag, Au, Cu, Co, Cr, Ni, Fe, Ir, Mo, Pt, Pd, Sn, Ti, V, W, Zn and Zr.
23. The composition of any one of Claims 1 or 2 containing transition metal εubstituted organic macrocycles in the poreε.
24. The compoεition of Claim 2 wherein the surfaces of the compositionε have been functionalized by an alkyl metal alkoxide precurεor repreεented as M- R(OR)Jc l, where M is the metal, x repreεentε available bonding εiteε on M.
25. The compoεition of Claim 2 and 6 wherein the εurfaceε of the composition upon removal of the template have been functionalized by substitution of the metal alkoxide precursor by a metal carboxylate precursor.
26. The compoεition of any one of Claims 1 or 2 wherein surfaces of the compositionε have been functionalized by reaction of the composition upon removal of the template and calcination with various reagents selected from the group consiεting of chlorideε, fluorideε, εyliεation and alkylation reagentε.
27. The compoεitionε of Claim 2 wherein the template (N°) iε εelected from the group conεisting of primary, secondary and tertiary fatty alcohol poly(ethoxylates) .
28. The compoεitionε of Claim 2 wherein the nonionic template (N°) iε an alkyl phenol poly- (ethoxylateε) .
29. The compoεitionε of Claim 2 wherein the nonionic template (N°) iε a fatty acid ethoxylate.
30. The compoεitionε of Claim 2 wherein the nonionic template (N°) iε a poly (ethylene oxide- propylene oxide) block co-polymer.
31. The composition of Claim 2 wherein the template (N°) is selected from the group consisting of primary and secondary fatty amine poly(ethoxylate) .
32. The composition of Claim 2 wherein the template (N°) is a fatty acid poly(ethylene oxide- propylene oxide) block co-polymer.
33. The composition of Claim 2 wherein the template (N°) is selected from the group conεiεting of fatty acid alkanolamides and ethoxylates.
34. The compoεition of Claim 1 wherein the template (N°) iε selected from the group consisting of sorbitan esters and sorbitan ethoxylates.
35. The composition of Claim 1 wherein the template (N°) is a polyamine propoxylate ethoxylate.
36. A method for the preparation of a synthetic semi-cryεtalline inorganic oxide compoεition which comprises:
(a) providing a mixture of (i) a neutral inorganic oxide precursor (1°) containing at least one element selected from the group consiεting of di-, tri-, tetra-, penta- and hexavalent elements and mixture thereof; (ii) a non-ionic poly(alkylene oxide) surfactant (S°) as a template; and (iii) a hydrolyzing agent;
(b) mixing the solution to form a gel containing the composition;
(c) εeparating at least some of the hydrolyzing agent and the εurfactant to form the compoεition; and
(d) optionally calcining the composition .
37. The method of Claim 36 wherein the gel is prepared by a random order of addition of the neutral template and neutral inorganic oxide precurεor.
38. A method for the preparation of a εynthetic, εemi-cryεtalline inorganic oxide composition which comprises:
(a) preparing a solution of a neutral inorganic oxide precursor (1°) , containing at least one element selected from the group consiεting of di-, tri-, tetra-, penta- and hexavalent elements and mixtures thereof with stirring and optionally aging the inorganic oxide precursor (1°) solution; (b) preparing a homogeneous solution of a nonionic poly(alkylene oxide) surfactant (S°) as a template in a hydrolyzing agent, and optionally in a co-solvent, by stirring it at a temperature between about minus 20° and plus 100°C; (c) mixing of the solutions of steps (a) and
(b) at a temperature between about minus 20° and plus 100°C to form a gel which is aged for at least about 30 minutes to form the compoεition;
(d) separating at least some of the hydrolyzing agent and εurfactant from the compoεition; and
(e) optionally calcining the composition.
39. The method of Claim 38 wherein the neutral precursor is selected from the group consisting of a metal alkoxide, an inorganic complex, a colloidal inorganic oxide solution, an inorganic oxide sol and mixtures thereof.
40. The method of Claim 38 wherein said inorganic oxide precursor εolution iε mixed without aging.
41. The method of Claim 38 wherein the template iε εeparated from the compoεition and as an additional step recycled after step (d) .
42. The method of Claim 41 wherein the template is separated by extraction with a solvent selected from the group consisting of a neutral organic solvent, water and mixtures thereof.
43. The method of Claim 38 wherein in step (a) the solution is a gel with the stirring at a temperature of at least minus 20°C for at least 5 minutes.
44. The method of Claim 38 wherein the composition iε calcined at about 300° to 1000°C for at leaεt about 30 minutes.
45. A method for the preparation of a crystalline inorganic oxide composition which compriseε:
(a) preparing a homogeneouε εolution of nonionic poly(ethylene oxide) surfactant as a template (N°) in a lower alkyl alcohol solvent by mixing at ambient temperature;
(b) adding an inorganic metal precurεor to the εolution of εtep (a) at ambient temperature under εtirring for at leaεt 30 minuteε to form a homogeneous solution;
(c) slowly adding a solution of a hydrolyzing agent to the homogeneous solution to form a gel as a firεt precipitate in the aqueouε solution; (d) aging of the firεt precipitate with εtirring;
(e) redisperεion of the firεt precipitate in a lower alkyl alcohol;
(f) aging the redispersion under stirring at ambient temperature for 16 to 48 hours to form a second precipitate;
(g) separating the aqueous solution, lower alkanol and at least some of the template from the second precipitate by washing once with ethanol; (h) drying the second precipitate in air at ambient temperature to form the composition;
(i) optionally heat treating the εecond precipitate to at leaεt 373°K in air for at leaεt 16 hours; (j) optionally removing the template by solvent extraction; and
(k) optionally calcining the second precipitate to remove any remaining of the template and to cross-link the framework at between about 673°K and 923°K in air for at least 4 hours.
46. The method of Claim 45 wherein the calcining iε by combustion in air.
47. A method for the preparation of synthetic, semi-crystalline inorganic silicon dioxide composition which compriseε:
(a) preparing a homogeneouε aqueous εolution of a nonionic poly(ethylene oxide) derived surfactant template (N°) with mixing at ambient temperature;
(b) adding an inorganic silica precursor to the solution of step (a) at ambient temperature with stirring to form a solid, precipitate;
(c) aging of the precipitate with stirring at ambient temperature for between 16 and 48 hours;
(d) separating the aqueous solution and template from the precipitate followed by washing once with deionized water;
(e) drying the precipitated and separated precipitate in air at ambient temperature;
(f) heat treating the air dried precipitate in air at least 373°K for at least 16 hours; (g) optionally removing any remaining template by εolvent extraction from the heat treated precipitate; and
(h) calcining the precipitate to remove any remaining template to croεε-link the framework at between 673°K and 923°K in air for at least 4 hours to form the composition.
48. The method of Claim 47 wherein the calcining is by combustion in air.
PCT/US1996/007574 1995-06-06 1996-05-24 Porous inorganic oxide materials prepared by non-ionic surfactant templating route WO1996039357A1 (en)

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Cited By (27)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE19704875A1 (en) * 1996-02-09 1997-08-14 Intevep Sa Matter composition with an inorganic, porous material and method for producing such a material
WO1998015500A1 (en) * 1996-10-10 1998-04-16 Massachusetts Institute Of Technology Compositions and methods for preparing porous metal oxides
EP0858969A1 (en) * 1997-02-13 1998-08-19 Max-Planck-Gesellschaft zur Förderung der Wissenschaften e.V. Amphiphilic block copolymers in lyotropic liquid crystal phase as a temlate for the preparation of mesoporous solids
EP0891947A1 (en) * 1997-07-14 1999-01-20 Basf Aktiengesellschaft Aluminium oxide containing solid of high specific surface
EP0891948A1 (en) * 1997-07-14 1999-01-20 Basf Aktiengesellschaft Aluminium oxide containing solid of high specific surface
DE19738913A1 (en) * 1997-09-05 1999-03-11 Max Planck Gesellschaft Block copolymer phases as a template for structured organic-inorganic hybrid materials
WO1999021796A1 (en) * 1997-10-27 1999-05-06 MAX-PLANCK-Gesellschaft zur Förderung der Wissenschaften e.V. Production of porous and bimodal porous silicates and inorganics by templating functional latex particles
FR2772017A1 (en) * 1997-12-04 1999-06-11 Inst Francais Du Petrole A new process for the synthesis of alumina of controlled porosity
FR2772015A1 (en) * 1997-12-04 1999-06-11 Inst Francais Du Petrole Hydrated alumina derivatives containing surfactant
FR2772018A1 (en) * 1997-12-04 1999-06-11 Inst Francais Du Petrole A new process for the preparation of alumina of controlled porosity
FR2772016A1 (en) * 1997-12-04 1999-06-11 Inst Francais Du Petrole A new preparation of aluminum hydrates, as precursors for aluminas of controlled porosity
EP0935996A2 (en) * 1998-02-17 1999-08-18 Intevep SA A composition of matter, comprising an inorganic porous material and a method for preparing the same
US5958367A (en) * 1995-04-03 1999-09-28 Massachusetts Institute Of Technology Methods for preparing porous metal oxides
EP0974555A1 (en) * 1998-07-22 2000-01-26 Institut Français du Pétrole Synthesis process of aluminas in a basic medium
EP0987776A1 (en) * 1998-09-18 2000-03-22 Canon Kabushiki Kaisha Metal oxide of porous structure, electrode structure, secondary battery, and methods for producing them
GB2341853A (en) * 1996-02-09 2000-03-29 Intevep Sa Process for the manufacture of an inorganic porous material
EP1054732A1 (en) * 1998-02-13 2000-11-29 MOBIL OIL CORPORATION (a New York corporation) A method of modifying a crystalline molecular sieve material
US6197276B1 (en) 1998-02-13 2001-03-06 Institut Francais Du Petrole Hydrated aluminum compounds, their preparation and use thereof
FR2803223A1 (en) * 1999-12-30 2001-07-06 Rhodia Chimie Sa PROCESS FOR PREPARING MESOSTRUCTURE MATERIAL FROM PARTICLES OF NANOMETER DIMENSIONS
US6329017B1 (en) 1998-12-23 2001-12-11 Battelle Memorial Institute Mesoporous silica film from a solution containing a surfactant and methods of making same
EP1296894A1 (en) * 2000-05-25 2003-04-02 Michigan State University Ultrastable porous aluminosilicate structures
WO2005047199A1 (en) * 2003-11-17 2005-05-26 National Institute Of Advanced Industrial Science And Technology Nanocrystal oxide/glass composite mesoporous powder or thin film, process for producing the same, and utilizing the powder or thin film, various devices, secondary battery and lithium storing device
WO2007065982A1 (en) 2005-12-09 2007-06-14 Institut Francais Du Petrole Mesostructured organic/inorganic hybrid material
WO2009033065A1 (en) * 2007-09-07 2009-03-12 The Curators Of The University Of Missouri Polymer nanoencapsulated acid-catalyzed sol-gel silica monoliths
WO2009122022A2 (en) 2008-03-31 2009-10-08 Ifp Mesostructured aluminosilicate material formed from spherical particles of specific size
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Families Citing this family (129)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0987220A1 (en) 1998-09-17 2000-03-22 Technische Universiteit Delft Mesoporous amorphous silicate materials and process for the preparation thereof
US6162414A (en) * 1994-08-22 2000-12-19 Board Of Trustees Operating Michigan State University Quasi crystalline inorganic oxide compositions prepared by neutral templating route
US5785946A (en) * 1994-08-22 1998-07-28 Board Of Trustees Operating Michigan State University Crystalline inorganic oxide compositions prepared by neutral templating route
US5622684A (en) * 1995-06-06 1997-04-22 Board Of Trustees Operating Michigan State University Porous inorganic oxide materials prepared by non-ionic surfactant templating route
IT1276726B1 (en) * 1995-06-15 1997-11-03 Eniricerche Spa MESOPOROUS ALUMINUM GEL AND PROCEDURE FOR ITS PREPARATION
US5863515A (en) * 1996-02-20 1999-01-26 California Institute Of Technology Mesoporous alumina and process for its preparation
US5800799A (en) * 1996-05-02 1998-09-01 Board Of Trustees Operating Michigan State University Porous inorganic oxide materials prepared by non-ionic surfactant and fluoride ion
US5980849A (en) * 1996-09-09 1999-11-09 Kabushiki Kaisha Toyota Chuo Kenkyusho Mesopore material, laminar silicic acid, and method of manufacturing mesopore material and laminar silicic acid
US6129904A (en) * 1996-09-19 2000-10-10 Sud-Chemie A.G. Aluminum oxide masses with very narrow pore radius distribution
DE19638442A1 (en) * 1996-09-19 1998-03-26 Sued Chemie Ag Aluminum oxide masses with a very narrow pore radius distribution
US5922299A (en) 1996-11-26 1999-07-13 Battelle Memorial Institute Mesoporous-silica films, fibers, and powders by evaporation
US6190639B1 (en) * 1997-03-17 2001-02-20 Shell Oil Company Process for the preparation of mesoporous molecular sieves and porous crystalline materials
US6413489B1 (en) 1997-04-15 2002-07-02 Massachusetts Institute Of Technology Synthesis of nanometer-sized particles by reverse micelle mediated techniques
US6890624B1 (en) * 2000-04-25 2005-05-10 Nanogram Corporation Self-assembled structures
KR100502449B1 (en) * 1997-08-27 2005-11-08 에스케이 주식회사 Method for manufacturing medium-sized pore components themselves with metal elements substituted in skeletal structure by using metal adhesion method
KR100425356B1 (en) * 1997-11-21 2004-03-31 아사히 가세이 가부시키가이샤 Mesoporous silica, process for the preparation of the same, and use thereof
WO1999037705A1 (en) * 1997-12-09 1999-07-29 The Regents Of The University Of California Block polymer processing for mesostructured inorganic oxide materials
US5958624A (en) * 1997-12-18 1999-09-28 Research Corporation Technologies, Inc. Mesostructural metal oxide materials useful as an intercalation cathode or anode
US6696258B1 (en) 1998-01-20 2004-02-24 Drexel University Mesoporous materials and methods of making the same
AU2460099A (en) * 1998-01-20 1999-08-02 Drexel University Mesoporous materials and methods of making the same
US6027706A (en) * 1998-05-05 2000-02-22 Board Of Trustees Operating Michigan State University Porous aluminum oxide materials prepared by non-ionic surfactant assembly route
SG82626A1 (en) * 1998-08-04 2001-08-21 Sumitomo Chemical Co Titanium-containing silicon oxide catalyst
US6541539B1 (en) * 1998-11-04 2003-04-01 President And Fellows Of Harvard College Hierarchically ordered porous oxides
US6383466B1 (en) 1998-12-28 2002-05-07 Battelle Memorial Institute Method of dehydroxylating a hydroxylated material and method of making a mesoporous film
WO2000039028A1 (en) * 1998-12-23 2000-07-06 Battelle Memorial Institute Mesoporous silica film from a solution containing a surfactant and methods of making same
US6511642B1 (en) 1999-01-12 2003-01-28 Kabushiki Kaisha Toyota Chuo Kenkyusho Porous material, catalyst, method of producing the porous material and method for purifying exhaust gas
US6146602A (en) * 1999-02-08 2000-11-14 Ford Global Technologies, Inc. Mesoporous oxide molecular sieves for absorbing nitrogen oxides in oxidizing engine exhaust gas
US6310110B1 (en) 1999-07-30 2001-10-30 Michael A. Markowitz Molecularly-imprinted material made by template-directed synthesis
US6649083B1 (en) 1999-08-12 2003-11-18 Board Of Trustees Of Michigan State University Combined porous organic and inorganic oxide materials prepared by non-ionic surfactant templating route
US6544923B1 (en) 1999-08-25 2003-04-08 Massachusetts Institute Of Technology Surface-confined catalytic compositions
US6930219B2 (en) 1999-09-07 2005-08-16 Abb Lummus Global Inc. Mesoporous material with active metals
US7608747B2 (en) * 1999-09-07 2009-10-27 Lummus Technology Inc. Aromatics hydrogenolysis using novel mesoporous catalyst system
US6814950B1 (en) 1999-09-07 2004-11-09 Abb Lummus Global Inc. Inorganic oxides with mesoporosity or combined meso-and microporosity and process for the preparation thereof
US7663011B2 (en) * 1999-09-07 2010-02-16 Lummus Technology Inc. Mesoporous material with active metals
US6906208B2 (en) 1999-09-07 2005-06-14 Abb Lummus Global Inc. Mesoporous material and use thereof for the selective oxidation of organic compounds
US20060052236A1 (en) * 1999-09-07 2006-03-09 Angevine Philip J Hydroprocessing catalyst with zeolite and high mesoporosity
JP3060017B1 (en) * 1999-09-09 2000-07-04 名古屋大学長 Method for low-temperature production of porous ceramic body having hollow structure
JP3587373B2 (en) * 1999-09-10 2004-11-10 キヤノン株式会社 Mesostructured thin film and method of manufacturing the same
US20040089238A1 (en) * 1999-10-04 2004-05-13 Jerome Birnbaum Vacuum/gas phase reactor for dehydroxylation and alkylation of porous silica
DE60003461T2 (en) 1999-11-23 2004-05-06 UNIVERSITé LAVAL MESOPOROUS ZEOLITHIC MATERIAL WITH MICROPOROUS CRYSTALLINE MESOPORAL WALLS
US6346140B2 (en) 2000-03-31 2002-02-12 Kabushiki Kaisha Toyota Chuo Kenkyusho Porous solid for gas adsorption separation and gas adsorption separation process employing it
AUPQ665000A0 (en) * 2000-04-03 2000-05-04 University Of Queensland, The Improved catalyst
US6800266B2 (en) 2000-04-13 2004-10-05 Board Of Trustees Of Michigan State University Process for the preparation of hybrid mesoporous molecular sieve silicas from amine surfactants
US6607705B2 (en) * 2000-04-13 2003-08-19 Board Of Trustees Of Michigan State University Process for the preparation of molecular sieve silicas
KR100532833B1 (en) * 2000-06-26 2005-12-01 아사히 가세이 가부시키가이샤 Porous, fine inorganic particles
ES2182648B1 (en) * 2000-08-18 2004-06-16 Consejo Superior De Investigaciones Cientificas MESOPOROUS ALUMINES WITH HIGH THERMAL STABILITY AND ITS PREPARATION PROCEDURE.
CA2317056A1 (en) * 2000-08-25 2002-02-25 Universite Laval Formation of hydrophilic sites in partially silylated micelle templated silica
FR2816609B1 (en) * 2000-11-14 2003-01-10 Ceca Sa MESOPOREOUS INORGANIC SOLIDS, THEIR PREPARATION PROCESS AND THEIR USES, IN PARTICULAR AS CATALYSTS AND ABSORBENTS
US6406794B1 (en) 2001-02-08 2002-06-18 Jsr Corporation Film-forming composition
US6845329B1 (en) * 2001-05-18 2005-01-18 Uop Llc Process for determining a zeolite structure and its corresponding adsorption isotherm
US6897175B2 (en) * 2001-10-09 2005-05-24 General Electric Catalyst and method for the alkylation of hydroxyaromatic compounds
US7052665B2 (en) * 2001-11-01 2006-05-30 Silicycle Inc. Method of preparing highly ordered mesoporous molecular sieves
WO2003045840A2 (en) * 2001-11-21 2003-06-05 University Of Massachusetts Mesoporous materials and methods
US6465052B1 (en) 2001-11-30 2002-10-15 Nanotek Instruments, Inc. Method for production of nano-porous coatings
EP1332795A1 (en) * 2002-02-01 2003-08-06 Centre National De La Recherche Scientifique (Cnrs) New porous silicate materials and their uses as catalytic systems for diesel improvement
EP1486462A4 (en) * 2002-03-07 2008-10-22 Japan Science & Tech Agency Non-silica mesoporous oxide having improved pore structure periodism, method of producing the mesoporous oxide and method of crystallizing pore wall of non-silica mesoporous oxide using template to be filled in pores
JP2003335515A (en) * 2002-05-17 2003-11-25 National Institute Of Advanced Industrial & Technology Highly three-dimensionally regular nanoporous inorganic body having micropore, method for producing the same, and method for evaluating the same
US7132093B2 (en) * 2002-06-05 2006-11-07 UNIVERSITé LAVAL Mesoporous mixed oxide materials as a new class of SO2 resistant catalysts for hydrocarbon oxidation
US7594982B1 (en) 2002-06-22 2009-09-29 Nanosolar, Inc. Nanostructured transparent conducting electrode
US7253017B1 (en) * 2002-06-22 2007-08-07 Nanosolar, Inc. Molding technique for fabrication of optoelectronic devices
JP2005535547A (en) * 2002-08-12 2005-11-24 ポステック・ファウンデーション Method for producing mesoporous alumina molecular sieve and alumina nanotube, and use of alumina nanotube for hydrogen storage
US7771609B2 (en) * 2002-08-16 2010-08-10 Aerogel Technologies, Llc Methods and compositions for preparing silica aerogels
WO2004026783A1 (en) * 2002-09-17 2004-04-01 3M Innovative Properties Company Porous surfactant mediated metal oxide films
EP1410844A1 (en) * 2002-10-15 2004-04-21 Centre National De La Recherche Scientifique (Cnrs) Silicon-based porous catalytic system for oligomerising light olefins
JP4265212B2 (en) * 2002-12-19 2009-05-20 住友化学株式会社 Method for producing titanium-containing silicon oxide catalyst
US6960327B2 (en) * 2003-01-30 2005-11-01 The Regents Of The University Of California Methods for removing organic compounds from nano-composite materials
US7211238B2 (en) * 2003-03-12 2007-05-01 Abb Lummus Global Inc. Mesoporous aluminum oxide, preparation and use thereof
US7825064B2 (en) * 2003-06-03 2010-11-02 William Marsh Rice University Supported catalysts using nanoparticles as the support material
US7081432B2 (en) * 2003-07-10 2006-07-25 General Electric Company Alkylation catalyst and method for making alkylated phenols
US7981441B2 (en) * 2004-02-18 2011-07-19 The Board Of Trustees Of The Leland Stanford Junior University Drug delivery systems using mesoporous oxide films
US8097269B2 (en) * 2004-02-18 2012-01-17 Celonova Biosciences, Inc. Bioactive material delivery systems comprising sol-gel compositions
US7087705B2 (en) * 2004-03-31 2006-08-08 General Electric Company Process for the monoalkylation of dihydroxy aromatic compounds
US7589041B2 (en) * 2004-04-23 2009-09-15 Massachusetts Institute Of Technology Mesostructured zeolitic materials, and methods of making and using the same
US7897538B2 (en) * 2004-05-21 2011-03-01 Exxonmobil Research And Engineering Company Process for removing sulfur compounds from hydrocarbon streams and adsorbent used in this process
FR2872151B1 (en) * 2004-06-24 2007-06-29 Inst Francais Du Petrole MATERIAL ALUMINOSILICATE MESOSTRUCTURE
JP4650885B2 (en) * 2004-09-07 2011-03-16 株式会社神戸製鋼所 Method for forming porous film and porous film formed by the method
US7838461B2 (en) * 2004-11-01 2010-11-23 Asahi Kasei Kabushiki Kaisha Catalyst for exhaust gas purification
US20060099130A1 (en) * 2004-11-08 2006-05-11 Rolando Roque-Malherbe Silica mesoporous materials
US20060245988A1 (en) * 2005-04-27 2006-11-02 General Electric Company Ceramic nanoreactor having controlled parameters and method for making same
FR2886637B1 (en) * 2005-06-02 2007-08-03 Inst Francais Du Petrole MESOSTRUCTURE MATERIAL WITH HIGH ALUMINUM CONTENT
FR2886636B1 (en) * 2005-06-02 2007-08-03 Inst Francais Du Petrole INORGANIC MATERIAL HAVING METALLIC NANOPARTICLES TRAPPED IN A MESOSTRUCTURED MATRIX
US7705062B2 (en) * 2005-09-08 2010-04-27 The United States Of America As Represented By The Secretary Of The Navy Nanoporous organosilicas as pre-concentration materials for sensors
WO2007075680A2 (en) * 2005-12-19 2007-07-05 University Of Vermont And State Agricultural College System and method for delivering a desired material to a cell
US7750056B1 (en) 2006-10-03 2010-07-06 Sami Daoud Low-density, high r-value translucent nanocrystallites
ES2319007B1 (en) * 2006-12-07 2010-02-16 Rive Technology, Inc. METHODS FOR MANUFACTURING MESOSTRUCTURED ZEOLITICAL MATERIALS.
EP1930074A1 (en) * 2006-12-08 2008-06-11 Robert Prof. Dr. Schlögl Novel mesoporous mixed metal oxide catalyst and method for the preparation thereof
EP2115055B1 (en) * 2007-01-05 2015-03-18 Board of Trustees of Michigan State University Composites comprising polymer and mesoporous silicate
US20080214882A1 (en) * 2007-02-16 2008-09-04 Board Of Trustees Of Michigan State University Acidic mesostructured aluminosilicates assembled from surfactant-mediated zeolite hydrolysis products
US8932702B2 (en) * 2007-06-15 2015-01-13 Sba Materials, Inc. Low k dielectric
US20110047995A1 (en) * 2009-08-31 2011-03-03 General Electric Company Catalyst and method of manufacture
US9272271B2 (en) * 2007-09-19 2016-03-01 General Electric Company Manufacture of catalyst compositions and systems
US9375710B2 (en) 2007-09-19 2016-06-28 General Electric Company Catalyst and method of manufacture
US8871669B2 (en) * 2008-05-19 2014-10-28 General Electric Company Catalyst and method of manufacture
US20090263297A1 (en) * 2007-09-19 2009-10-22 General Electric Company Catalyst and method of manufacture
US8530369B2 (en) * 2007-09-19 2013-09-10 General Electric Company Catalyst and method of manufacture
US8206498B2 (en) * 2007-10-25 2012-06-26 Rive Technology, Inc. Methods of recovery of pore-forming agents for mesostructured materials
WO2009078924A2 (en) * 2007-12-06 2009-06-25 The Regents Of The University Of California Mesoporous silica nanoparticles for biomedical applications
KR20090076408A (en) * 2008-01-08 2009-07-13 삼성에스디아이 주식회사 Biphase platinum catalyst and solar cell using the same
US9114125B2 (en) 2008-04-11 2015-08-25 Celonova Biosciences, Inc. Drug eluting expandable devices
US8088439B2 (en) 2008-08-29 2012-01-03 Korea University Research And Business Foundation Porous membrane and method of making the same
US8524625B2 (en) * 2009-01-19 2013-09-03 Rive Technology, Inc. Compositions and methods for improving the hydrothermal stability of mesostructured zeolites by rare earth ion exchange
ES2875884T3 (en) 2009-01-19 2021-11-11 Grace W R & Co Introduction of mesoporosity in zeolites with low Si / A1 content
US20100196237A1 (en) 2009-01-30 2010-08-05 General Electric Company Templated catalyst composition and associated method
US20100196236A1 (en) * 2009-01-30 2010-08-05 General Electric Company Templated catalyst composition and associated method
US8334421B1 (en) 2009-07-01 2012-12-18 Sandia Corporation Method of making nanostructured glass-ceramic waste forms
US8889587B2 (en) 2009-08-31 2014-11-18 General Electric Company Catalyst and method of manufacture
US8685875B2 (en) 2009-10-20 2014-04-01 Rive Technology, Inc. Methods for enhancing the mesoporosity of zeolite-containing materials
US20110152068A1 (en) * 2009-12-17 2011-06-23 General Electric Company Processing of high surface area oxides
US8476187B2 (en) * 2010-01-06 2013-07-02 General Electric Company Process for preparing catalyst powder
US20110171121A1 (en) * 2010-01-08 2011-07-14 Rive Technology, Inc. Compositions and methods for making stabilized mesoporous materials
US10259723B2 (en) 2010-05-21 2019-04-16 Znano Llc Self-assembled surfactant structures
CN103025411A (en) * 2010-05-21 2013-04-03 阿德里安·布罗曾尔 Self-assembled surfactant structures
US20120207795A1 (en) 2010-07-13 2012-08-16 The Regents Of The University Of California Cationic polymer coated mesoporous silica nanoparticles and uses thereof
US20120048777A1 (en) * 2010-08-31 2012-03-01 General Electric Company Method of manufacturing a catalyst and method for preparing fuel from renewable sources using the catalyst
US8568680B2 (en) 2010-10-08 2013-10-29 City University Of Hong Kong Gas treatment by catalytic ozone oxidation
CN103732537A (en) 2011-04-08 2014-04-16 瑞弗科技有限公司 Mesoporous framework-modified zeolites
US20120329644A1 (en) 2011-06-21 2012-12-27 General Electric Company Catalyst composition and catalytic reduction system
US10220004B2 (en) 2011-07-14 2019-03-05 The Regents Of The University Of California Method of controlled delivery using sub-micron-scale machines
US9376324B2 (en) 2012-01-13 2016-06-28 Rive Technology, Inc. Introduction of mesoporosity into zeolite materials with sequential acid, surfactant, and base treatment
US9580329B2 (en) 2012-01-13 2017-02-28 Rive Technology, Inc. Introduction of mesoporosity into low silica zeolites
US10752526B2 (en) 2012-02-12 2020-08-25 Bluflow Technologies, Inc. Method for destruction of reducible contaminants in waste or ground water
JP2015537029A (en) 2012-11-14 2015-12-24 ダブリュー・アール・グレース・アンド・カンパニー−コーンW R Grace & Co−Conn Composition containing biologically active substance and irregular inorganic oxide
US8765660B1 (en) 2013-03-08 2014-07-01 Rive Technology, Inc. Separation of surfactants from polar solids
US9199226B2 (en) * 2013-03-15 2015-12-01 Saudi Basic Industries Corporation Alkane dehydrogenation catalyst performance obtained by a gel synthesis method
US9662640B2 (en) 2013-12-27 2017-05-30 Rive Technology, Inc. Introducing mesoporosity into zeolite materials with a modified acid pre-treatment step
US9303150B2 (en) 2014-04-03 2016-04-05 Baker Hughes Incorporated Reinforced and crosslinked polyarylenes, methods of manufacture, and uses thereof
EP3230208B1 (en) 2014-12-11 2022-05-18 W. R. Grace & Co.-Conn. Preparation of mesoporous zeolites with reduced processing
US10626019B2 (en) 2014-12-30 2020-04-21 W. R. Grace & Co.-Conn. Methods for preparing zeolites with surfactant-templated mesoporosity and tunable aluminum content
CN113060743B (en) * 2020-01-02 2023-05-26 中国石油天然气股份有限公司 Synthesis method of micro-mesoporous molecular sieve

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5057296A (en) * 1990-12-10 1991-10-15 Mobil Oil Corp. Method for synthesizing mesoporous crystalline material
US5156829A (en) * 1990-01-25 1992-10-20 Mobil Oil Corporation Method for stabilizing synthetic mesoporous crystalline material

Family Cites Families (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE286522C (en) *
US3702886A (en) * 1969-10-10 1972-11-14 Mobil Oil Corp Crystalline zeolite zsm-5 and method of preparing the same
US3709979A (en) * 1970-04-23 1973-01-09 Mobil Oil Corp Crystalline zeolite zsm-11
CA1040187A (en) * 1973-09-07 1978-10-10 Mobil Oil Corporation Method of preparing a crystalline aluminosilicate zeolite
US4108881A (en) * 1977-08-01 1978-08-22 Mobil Oil Corporation Synthesis of zeolite ZSM-11
US4391785A (en) * 1981-12-21 1983-07-05 Mobil Oil Corporation Preparation of ZSM-12 type zeolites
US5211934A (en) * 1990-01-25 1993-05-18 Mobil Oil Corp. Synthesis of mesoporous aluminosilicate
US5102643A (en) * 1990-01-25 1992-04-07 Mobil Oil Corp. Composition of synthetic porous crystalline material, its synthesis
US5238676A (en) * 1990-01-25 1993-08-24 Mobil Oil Corporation Method for modifying synthetic mesoporous crystalline materials
US5334368A (en) * 1990-01-25 1994-08-02 Mobil Oil Corp. Synthesis of mesoporous oxide
US5300277A (en) * 1990-01-25 1994-04-05 Mobil Oil Corporation Synthesis of mesoporous crystalline material
US5143879A (en) * 1991-07-18 1992-09-01 Mobil Oil Corporation Method to recover organic templates from freshly synthesized molecular sieves
US5308602A (en) * 1992-10-13 1994-05-03 Mobil Oil Corp. Synthesis of crystalline ultra-large pore oxide materials
US5622684A (en) * 1995-06-06 1997-04-22 Board Of Trustees Operating Michigan State University Porous inorganic oxide materials prepared by non-ionic surfactant templating route

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5156829A (en) * 1990-01-25 1992-10-20 Mobil Oil Corporation Method for stabilizing synthetic mesoporous crystalline material
US5057296A (en) * 1990-12-10 1991-10-15 Mobil Oil Corp. Method for synthesizing mesoporous crystalline material

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
SCIENCE, February 1995, Vol. 267, TANEV et al., "A Neutral Templating Route to Mesoporous Molecular Sieves", pages 865-67. *
See also references of EP0830314A4 *

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* Cited by examiner, † Cited by third party
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US5795559A (en) 1998-08-18
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EP0830314B1 (en) 2002-12-18
EP0830314A4 (en) 1998-08-26
DE69625480D1 (en) 2003-01-30

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