USRE40271E1 - Echelle grating dense wavelength division multiplexer/demultiplexer - Google Patents
Echelle grating dense wavelength division multiplexer/demultiplexer Download PDFInfo
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- USRE40271E1 USRE40271E1 US11/180,027 US18002705A USRE40271E US RE40271 E1 USRE40271 E1 US RE40271E1 US 18002705 A US18002705 A US 18002705A US RE40271 E USRE40271 E US RE40271E
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/26—Optical coupling means
- G02B6/28—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals
- G02B6/293—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
- G02B6/29304—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating
- G02B6/29305—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating as bulk element, i.e. free space arrangement external to a light guide
- G02B6/29308—Diffractive element having focusing properties, e.g. curved gratings
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B5/00—Optical elements other than lenses
- G02B5/18—Diffraction gratings
- G02B5/1861—Reflection gratings characterised by their structure, e.g. step profile, contours of substrate or grooves, pitch variations, materials
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/26—Optical coupling means
- G02B6/28—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals
- G02B6/293—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
- G02B6/29304—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating
- G02B6/29305—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating as bulk element, i.e. free space arrangement external to a light guide
- G02B6/2931—Diffractive element operating in reflection
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/26—Optical coupling means
- G02B6/28—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals
- G02B6/293—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
- G02B6/29371—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating principle based on material dispersion
- G02B6/29373—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating principle based on material dispersion utilising a bulk dispersive element, e.g. prism
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/26—Optical coupling means
- G02B6/28—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals
- G02B6/293—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
- G02B6/29379—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means characterised by the function or use of the complete device
- G02B6/2938—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means characterised by the function or use of the complete device for multiplexing or demultiplexing, i.e. combining or separating wavelengths, e.g. 1xN, NxM
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/26—Optical coupling means
- G02B6/28—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals
- G02B6/293—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
- G02B6/29346—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by wave or beam interference
- G02B6/29361—Interference filters, e.g. multilayer coatings, thin film filters, dichroic splitters or mirrors based on multilayers, WDM filters
Definitions
- the present invention is directed toward optical communications, and more particularly toward a bulk optical echelle grating multiplexer/demultiplexer.
- DWDM Dense wavelength division multiplexing
- optical fibers The volume of data being transmitted by optical fibers is growing exponentially and the capacity for data transmission is rapidly being consumed. Burying additional fibers is not cost effective. Increasing the optical transmission rate is limited by the speed and economy of electronics surrounding the system as well as chromatic dispersion in the fibers. Thus, the most promising solution for increasing data carrying capacity is increasing the number of channels per a given bandwidth through DWDM.
- DWDM requires two conceptually symmetric devices: a multiplexer and a demultiplexer.
- a multiplexer takes multiple beams or channels of light, each at a discrete wavelength and from a discrete source and combines the channels into a single multi-channel or polychromatic beam.
- the input typically is a linear array of waveguides such as a linear array of optical fibers, a linear array of laser diodes or some other optical source.
- the output is typically a single waveguide such as an optical fiber.
- a demultiplexer spacially separates a polychromatic beam into separate channels according to wavelength.
- Input is typically a single input fiber and the output is typically a linear array of waveguides such as optical fibers or a linear array of photodetectors.
- multiplexers and demultiplexers require certain inherent features. First, they must be able to provide for a high angular dispersion of closely spaced channels so that individual channels can be separated over relatively short distances sufficiently to couple with a linear array of outputs such as output fibers. Furthermore, the multiplexer/demultiplexer must be able to accommodate channels over a free spectral range commensurate with fiber optic communications bandwidth. Moreover, the devices must provide high resolution to minimize cross talk and must further be highly efficient to minimize signal loss. The ideal device would also be small, durable, thermally stable, inexpensive and scalable.
- Array waveguides have a set of intermediate pathways, e.g., waveguides, that progressively vary in length to incline wavefronts of different wavelength signals within a free spectral range.
- Confocal couplers connect the common and individual pathways to opposite ends of the intermediate pathways.
- One illustrative example is disclosed in Lee, U.S. Pat. No. 5,706,377.
- Array waveguides suffer from the disadvantages of being expensive to design and manufacture, unable to provide high channel densities over broad wavelengths necessary for DWDM, thermal sensitivity and a lack of scalability and polarization dependent and high insertion losses.
- DWDM devices use a network of filters and/or fiber Bragg gratings for channel separation.
- Pan, U.S. Pat. No. 5,748,350 is illustrative.
- the channel spacing of these devices on the order of 0.8 or 1.6 nanometers (nm), limits the number of wavelengths that can be coupled into or out of a fibers.
- these devices present significant issues of optical loss, cross talk, alignment difficulties and thermal sensitivity.
- Dueck U.S. Pat. No. 6,011,884, teaches a DWM device with a collimating optic and bulk grating in near-littrow configuration.
- Dueck is concerned with the use of a homogeneous boot lens to create a one-piece integrated device. This device is intended to be compact, robust and environmentally and thermally stable.
- the device taught by Dueck fails to address the need to provide many channels for DWDM, high efficiency and a short focal length to provide a compact device.
- Lundgren U.S. Pat. No. 6,018,603, like Dueck, teaches the use of a bulk diffraction grating for DWM. Specially, Lundgren teaches the use of an echellette grating in combination with a rod-like graded refractive index lens or imaging lens for correcting any offset in the focal length of a focusing lens. Lundgren also fails to teach a DWDM device capable of accommodating high channel density and providing a high angular dispersion of channels so as to minimize focal length and apparatus size.
- the present invention is intended to overcome some of the problems discussed above and to provide a bulk optical echelle grating multiplexer/demultiplexer with many of the attributes necessary for cost-effective DWDM.
- a dense wavelength multiplexer/demultiplexer (“DWDM”) for use in optical communication systems using optical signals in a select near infrared wavelength range and a select channel spacing includes at least two multiplex optical waveguides each propagating a distinct multiplexed optical signal comprising a plurality of channels.
- the multiplex optical waveguides are arranged in a linear array.
- a two dimensional array of single channel waveguides is arranged in linear rows perpendicular to the multiplexed linear array with each linear row corresponding to a multiplex optical waveguide.
- a reflective echelle grating is optically coupled to the multiplex optical waveguides and the single channel optical waveguides.
- the echelle grating has a groove spacing of between about 50-300 grooves/millimeter and a blaze angle of between about 51-53 degrees.
- the select near infrared wavelength range is preferably between about 1520-1610 nanometers and the select channel spacing is 0.8 nanometers or less.
- a collimating/focusing optic having a select focal length may be optically coupled between the multiplex and single channel waveguide arrays.
- the collimating/focusing optic preferably has a focal length less than 152.4 millimeters.
- Another aspect of the present invention is an apparatus for use in optical communication systems to multiplex or demultiplex an optical signal comprising optical channel(s) of distinct wavelength(s) having a select channel spacing within a select wavelength range.
- the apparatus includes a plurality of optical waveguides aligned generally along the same optical axis with each having a propagating end. At least two of the optical waveguides each propagate a distinct multiplexed optical signal comprising a plurality of channels, with the multiplexed optical waveguides being arranged in a multiplex linear array.
- the others of the optical waveguides are single channel waveguides arranged in a two dimensional array with linear rows perpendicular to the multiplex linear array and with each linear row corresponding to a multiplex optical waveguide.
- a reflective echelle grating is optically coupled to the plurality of optical waveguides along the optical axis and receives an optical signal emitted from at least one of the optical waveguides and diffracts the optical signal(s) to at least one other of the optical waveguide(s).
- the echelle grating may have a groove spacing of between about 50-300 grooves/millimeter and a blaze angle of between about 51-53 degrees.
- the optical signal comprises optical channels of a 0.8 nanometer or less channel spacing and different wavelengths within a wavelength range between 1520-1610 nanometers.
- the method includes providing a plurality of optical waveguides aligned generally along the same optical axis, at least two of the waveguides propagating a plurality of multiplexed channels, the at least two multiplexed waveguides being aligned in a multiplex linear array. The others of the optical waveguides propagate single channels.
- the single channel waveguides are aligned in a two-dimensional array having linear rows perpendicular to the multiplexed linear array with each multiplexed waveguide corresponding to a distinct linear row of single channel waveguides.
- An optical signal is directed from at least one of the optical waveguides to a reflective echelle grating optically coupled to the plurality of optical waveguides along the optical axis.
- the optical signal is diffracted generally along the optical axis and optically coupled into at least one other of the optical waveguides at a select focal length.
- the reflective echelle grating may have a blaze angle of between about 51-53 degrees and a groove spacing of between about 50-300 grooves/millimeter.
- Yet another aspect of the invention is a bulk optic echelle grating for use in multiplexing and demultiplexing optical signals in optical communication systems operating in a near infrared wavelength range.
- the grating has a groove spacing of between about 50-300 grooves/millimeter and a blaze angle of between about 51-53 degrees.
- FIG. 1 is a schematic plan view of a multiplexer/demultiplexer using a bulk echelle grating in accordance with the present invention
- FIG. 2 is an enlarged cross-section of the echelle grating grooves illustrating relevant dimensions
- FIG. 3 is a graphical representation of possible step widths and riser heights at different orders which may yield a working echelle grating
- FIG. 4 is a schematic representation of an example of a multiplexer/demultiplexer with a bulk echelle grating in accordance with the present invention
- FIG. 5 is a partial cross-sectional view of a pigtail template
- FIG. 6 is a perspective view of the multiplexer/demultiplexer with bulk echelle grating of FIG. 1 illustrating the potential adjustment of the components;
- FIG. 7 is a schematic view of a first alternate embodiment of the multiplexer/demultiplexer using a bulk echelle grating including a pair of collimating/focusing concave mirrors;
- FIG. 8 is a second alternate embodiment of the multiplexer/demultiplexer of FIG. 7 further including a prism providing for wavelength dispersion in a horizontal direction;
- FIG. 9 is a third alternate embodiment of the multiplexer/demultiplexer using a single collimating/focusing mirror
- FIG. 10 is a fourth alternate embodiment of the multiplexer/demultiplexer in accordance with the present invention using an off-axis parabolic mirror as the collimating/focusing optic with the device arranged in a near-littrow configuration;
- FIG. 11 is a fifth alternate embodiment of the multiplexer/demultiplexer of the present invention using a concave echelle grating
- FIG. 12 is a schematic representation of an apparatus for dividing a broad bandwidth into bandwidth segments for multiplexing/demultiplexing
- FIG. 13 is a schematic representation of the embodiment of FIG. 12 using three waveband dividing elements
- FIG. 14 is a schematic elevation of a pigtail harness having a one-dimensional input array of fibers and a two dimensional output array of fibers;
- FIG. 15 is a schematic representation of a multiplexer/demultiplexer having stacked multiplex fibers and a two-dimensional array of single channel fibers;
- FIG. 16 is a alternate embodiment of a multiplexer/demultiplexer having a stacked input fiber array and a two-dimensional array of output fibers;
- FIG. 17 is a schematic representation of the embodiment of FIG. 16 having 4 multi-channel input fibers and 4 ⁇ n single channel output fibers.
- a multiplexer/demultiplexer for use in optical communication systems 10 of the present invention is illustrated schematically in FIG. 1 . It includes a pigtail harness 12 consisting of an input waveguide 14 , a plurality of output waveguides 16 arranged in a linear array adjacent the input fiber, a collimating/focusing lens 18 and an echelle grating 20 , each of which are optically coupled.
- the multiplexer/demultiplexer will be discussed in terms of a demultiplexer. The description applies equally to a multiplexer, only with the function of the input and output waveguides 14 , 16 reversed. Also, for the sake of clarity, only seven output waveguides are illustrated (the center output waveguides underlies the input fiber in FIG.
- the waveguides 14 , 16 are preferably single mode optical fibers. As will be discussed in greater detail below, in the preferred embodiment, 90 or more output waveguides can be associated with a single input waveguide, depending upon the bandwidth channel, separation and a number of other factors.
- optically coupled or “optically communicates” means any connection, coupling, link or the like, by which optical signals carried by one optical element are imparted to the “coupled” or “communicating” element.
- Such “optically communicating” devices are not necessarily directly connected to one another, but may be separated by a space through which the optical signals traverse or by intermediate optical components or devices.
- the multiplexer/demultiplexer 10 is in “near littrow configuration,” meaning that the incident beam ⁇ 1-n and the channels diffracted off the surface of the grating ⁇ 1 , ⁇ 2 , ⁇ 3 , ⁇ 4 , ⁇ 5 , ⁇ 6 , ⁇ 7 are generally along the same optical axis (that is, they trace a very close path) and the lens both collimates the input beam ⁇ 1-n and focuses the diffracted channels ⁇ 1 - ⁇ 7 to the output fibers 16 .
- the echelle grating 20 uses interference between light wavefronts reflected from various portions of its ruled surface or steps 22 to divide the incident beam consisting of a plurality of channels ⁇ 1-n having a select channel spacing within a select wavelength range ⁇ 1-n into separate channels of wavelength beams ⁇ 1 - ⁇ 7 which are angularly dispersed by the grating into output waveguides some distance away.
- the channel separation of the device (D) which is the product of the focal length of the focusing/collimating optic the angular dispersion and the incremental channel spacing, is equal to the distance S between the center of adjacent output waveguides.
- the echelle grating 20 is particularly suited to use in optical communication systems because of a unique combination of properties: 1) it provides clear channel separation notwithstanding channels being closely spaced (0.4 nm or less); 2) it provides large spatial separation of channels over relatively short distances; and 3) it is highly efficient in the range of optical communications wavelengths.
- echelle gratings are a special grating structure having groove density (1/d) of under 300 grooves/mm and a blaze angle ⁇ b of greater than 45° which typically operate at an order of diffraction greater than 1.
- these features enable a multiplexer/demultiplexer that efficiently separates closely spaced channels over a relatively small focal length (e.g., 5 inches) enabling a small form factor form factor (on the order of 10 inches in length or less).
- the performance constraints include:
- FIG. 2 illustrates the echelle grating geometry and the variables set forth below.
- Constraining Factors f number (f) in range of 4-8 and resolution (“R”)>20,000.
- Constraining Factors Fl>124 mm and channel separation at least 80 ⁇ .
- Constraining Factors Wish to provide a flat response over the bandwidth.
- Constraining Factors Limitations on m from 4, and 2. above.
- FIG. 3 illustrates that these constraints and results provide a range of values for a and b at a given range of suitable orders (m). Simulations aimed at maximizing efficiency and minimizing polarization dependent loss optimize around blaze angles and groove frequencies that fall in the range of echelle gratings, i.e., 45 ⁇ b ⁇ 78° and d ⁇ 300 grooves/nm. Furthermore, limitations on manufacturing further dictate that only echelle gratings can provide the necessary results within the external and performance constraints.
- optical communications utilize what is know as the “C” band of near infrared wavelengths, a wavelength band ranging from 1528-1565 nanometers (nm). This provides a bandwidth or free spectral range of 37 nm available for channel separation.
- Known prior art multiplexer/demultiplexers require a channel spacing of 0.8 nm or even 1.6 nm, resulting in a possibility of only between 48 and 24 channels. Because echelle gratings provide markedly superior channel dispersion, a much smaller channel spacing of 0.4 nm was chosen, resulting in a possibility of 93 channels over the C band.
- Standard single mode optical fiber used in optical communications typically have an outer diameter of 125 microns ( ⁇ ) and a core diameter of 10 ⁇ .
- Optical fibers having an outer diameter of 80 ⁇ and core diameter of 8.3 i are available, model SM-1250 manufactured by Fibercore.
- both the input fiber 14 and the output fiber 16 are single mode and share the 80 ⁇ outer diameter. Assuming the output fibers 16 are abutted in parallel as illustrated in FIG. 4 , this results in the core centers being spaced 80 ⁇ , or a required channel separation D of 80 ⁇ at the select focal length.
- the 80 ⁇ spacing can be reduced, with core spacing of 40 ⁇ or less being foreseeable, which could enable shorter focal lengths or different echelle grating designs having lesser angular dispersion.
- the spread of the beam emitted from the fiber was 100 at the e-folding distance, although it was later found to be 14° at the 1 % point.
- the design was intended to provide a high channel density in a form factor consistent with or smaller than used in current multiplexer/demultiplexer devices.
- a total length of between 10-12 inches was the design target.
- a maximum focal length of 5 inches (127 mm) was chosen.
- a focal length of 124 was ultimately dictated.
- FIG. 3 is a cross-section showing the principle echelle grating dimensions including: blaze angle ( ⁇ b ), wavelength range and groove density (d).
- Spread sheet calculations show that b ⁇ 5.5 ⁇ (or b ⁇ 8.5 ⁇ ), is necessary to make the spectral image >12,000 ⁇ at its 90% intensity point.
- dispersion must be constrained to contain the 0.08 nm channel width in a 10 ⁇ core, so that m ⁇ 3.34b ⁇ .
- the echelle grating has a groove density of 171.4 grooves/mm and a blaze angle of 52.6°.
- the echelle may be formed from one of several known methods. For example, it may be formed from an epoxy layer deposited on a glass substrate into which a master die defining the steps is pressed. The steps are then coated with a highly reflective material such as gold. The steps may also be precision machined directly into a glass or silicon substance and then coated with a reflective material.
- a further option is the use of photolithographic techniques described in McMahon, U.S. Pat. No. 4,736,360, the contents of which are hereby expressly incorporated by reference in its entirety.
- the lens 18 could be a graded index (GRIN) optic with spherical surfaces or a compound lens with one or more surfaces that might not be spherical (aspheric).
- GRIN graded index
- the use of lenses or a single lens to collimate the beam and focus the dispersed light limits spherical aberrations or coma resulting from the use of front surface reflectors that require the optical rays to transverse the system in a off-axis geometry.
- a first type of potential lens uses a radially graded refractive index to achieve near-diffraction limited imaging of off-axis rays.
- a second type of lens actually consists of at least two individual pieces cemented together (doublet). Another option uses three individual lens pieces (triplet). These pieces may individually have spherical surfaces, or if required for correction of certain types of aberration, aspheric surfaces can be utilized. In this case, the lens would be referred to as an aspheric doublet or triplet.
- the lens 18 is an aspheric singlet of a 25.4 mm diameter having a spherical surface 26 with a radius of curvature of 373.94 mm and an aspheric surface 28 with a radius of curvature of 75 mm and a conic constant of ⁇ 0.875.
- the average focal length in the 1520-1580 nm wavelength range is 125.01 nm.
- the distance A from the center of the spheric surface to the emitting end of the input and output fibers 14 , 16 is about 125 mm.
- the average distance between the aspheric surface 28 and the center of the surface of the grating 20 is about 43.2 mm.
- the input and output fibers terminate in the same plane. This is also the case with the example illustrated in FIG. 4 .
- the inlet 14 and outlet fibers 16 are on slightly different axes and do not terminate in the same plane.
- the fibers 14 , 16 of the pigtail are precisely located by being fit into a template 34 illustrated schematically in FIG. 5 .
- the template 34 has a plurality of parallel v-shaped grooves 36 .
- the template and v-shaped grooves are preferably formed by etching the grooves 36 into a silicon substrate. In the example in FIG. 4 , the grooves of the template are spaced 80 ⁇ .
- the example configuration of FIG. 4 is shown in perspective view in FIG. 6 .
- the pigtail 12 , the lens 18 and the grating 20 have limited freedom of movement in multiple directions. Once they are moved into position, they are secured in place by clamps or a suitable bonding agent.
- the lens 18 is held stationary.
- the pigtail 12 is movable by translation along the x, y and z axes.
- the input and output fibers can be moved independently along the x axis.
- the echelle grating 20 is fixed against translational movement except along the z axis. It can be rotated about each of the x, y and z axes. Other possible combinations of element movement may also yield suitable alignment.
- the dimensions and performance criterion of the DWDM device 10 of FIG. 4 are summarized as follows:
- FIG. 8 is a schematic representation of an echelle grating multiplexer/demultiplexer using a prism in combination with front surface optical mirrors.
- light from a single mode input fiber 62 is directed off a collimating/focusing mirror 64 and the collimated beam 66 is directed through prism 68 .
- the prism 68 provides for wavelength dispersion in a horizontal direction as indicated by the beams 70 .
- These horizontally dispersed beams 70 are directed off the echelle grating 72 which in turn diffracts the beams 70 in an orthogonal dimension and directs these diffracted beams off the front surface of the concave collimating/focusing mirror 74 .
- a two dimensional output fiber array 76 receives the focused beams from the collimating/focusing mirror 74 .
- the use of the prism 68 in combination with the echelle grating 72 provides a two dimensional array of wavelength dispersion and may therefore facilitate detector arrays of shorter length as may be desirable in certain applications.
- FIG. 9 is a schematic representation of a third alternate embodiment 80 using a single concave mirror as both a collimating and focusing optic along the optical axis.
- input fiber 82 directs a beam consisting of multiplexed channels to the surface of the concave mirror 84 .
- a collimated beam 86 is reflected off the echelle grating 88 which diffracts the multiplexed signal in the manner discussed above.
- the demultiplxed channels are then reflected off the surface of the concave mirror 84 and directed into the array of output fibers 92 .
- the embodiment 80 contemplates the mirror 84 being spherical and therefore having a constant diameter of, for example 25 cm, a slightly parabolic or aspheric mirror may be used to improve image quality, if necessary.
- FIG. 10 is a fourth alternate embodiment 100 using an off-axis parabolic mirror as the collimating/focusing optic.
- multiplexed light from the input fiber 102 is directed off the front surface of an off-axis parabolic mirror 104 which in turn directs a collimated beam of light 106 off the surface of an echelle grating 108 .
- the multiplexed light is reflected off the surface of the echelle grating 108 back to the surface of the off-axis parabolic mirror 104 and dispersed to respective output fibers 106 .
- the echelle grating is in near-littrow configuration, thereby directing light back to the output fibers 106 .
- a fifth alternate embodiment illustrated in FIG. 11 uses a concave echelle grating 107 configured to be the optic which collimates and focuses the incoming beam. This embodiment eliminates the need for the collimating/focusing lenses or concave mirrors of alternate embodiments one-four.
- FIG. 12 illustrates schematically an apparatus 110 for dividing a broad bandwidth for multiplexing/demultiplexing.
- the apparatus 110 consists of an input fiber 112 , a high pass thin film filter 114 , a first focusing lens 116 , a second focusing lens 118 , a first echelle grating DWDM device 120 and a second echelle DWDM device 122 .
- the apparatus may likewise function as a multiplexer simply by reversing the direction of light propagation.
- a multiplexed beam 124 emitted from the input fiber 112 is directed onto the high pass thin film filter 114 .
- the high pass thin film filter has a design cut off wavelength that reflects the lower half of the wavelength range toward the first echelle grating DWDM 120 .
- the upper half of the wavelength range passes through the filter 114 to the second echelle DWDM device 122 .
- the input wavelength is in the range of 1460-1580 nm.
- the high pass thin film filter is designed to cut the band at 1520 nm.
- a wavelength range of 1460-1520 nm is directed toward the first echelle grating DWDM and a wavelength band of 1520-1580 nm is directed toward a second echelle grating DWDM device.
- the signal directed toward the first echelle grating DWDM is optically coupled to the first focusing lens 116 which directs the lower wavelength beam as an input to the first echelle grating DWDM.
- the upper wavelength beam 128 is optically coupled to the second focusing lens 118 which focuses the upper wavelength beam 128 as an input beam to the second echelle DWDM device 122 .
- the present example contemplates the use of a high pass thin film filter 114 .
- waveband dividing elements could be used instead, including devices using fiber Bragg gratings.
- the first and second echelle grating DWDM devices 120 , 122 of the present invention could have any of the configurations discussed above with regard to FIGS. 1-11 .
- the use of the echelle DWDM devices for demultiplexing the split wavelength bands provide the many advantages discussed above with regard to the embodiments illustrated in FIGS. 1-11 .
- the present invention could be practiced with other DWDM devices such as fiber Bragg grating devices, integrated waveguide arrays or the like.
- a device for providing a total wavelength range of 120 nm will allow up to 300 channels to be demultiplexed from a single fiber.
- this system is scalable. FIG.
- FIG. 13 illustrates schematically how an input bandwidth of 1460-1700 nm can be divided using three waveband dividing elements to four 60 nm bandwidth beams each of which can be input into an optimized echelle grating DWDM device.
- Such a device is capable of accommodating a total waveband of 240 nm and assuming a wavelength spacing of 0.4 nm, a total channel count of 600.
- the bulk optic echelle DWDM of the present invention is able to simultaneously demultiplex signals from a number of input fibers.
- each of the echelle grating DWDM devices illustrated in FIGS. 1-7 and 9 - 11 above light is spacially resolved in only one dimension, vertically in a direction transverse the dispersion direction.
- input fibers can be vertically stacked in a linear array and a corresponding two dimensional array of output fibers can be provided for receiving demultiplexed signals from the various input fibers.
- FIG. 14 is an elevation view of a pigtail harness 140 from the direction of the collimating/focusing optic.
- First, second and third input fibers 142 , 144 , 146 lying in a vertical linear array are optically coupled to first, second and third horizontal output rows 148 , 150 , 152 , respectively.
- a one dimensional input array produces a two-dimensional output array. While the present example is limited to three input fibers 142 , 144 , 146 and only nine output fibers in the output first, second and third output rows 148 , 150 , 152 , the actual number of output fibers will correspond to the number of input channels and will be a function of the channel separation and input bandwidth, and may easily exceed 90 output fibers per output fiber row.
- Each output fiber has a core center, and the output fiber core centers are spaced a distance equal to the linear separation of the grating at the device focal length.
- the number of corresponding input and output arrays may be greater than three and is largely a function of external factors such as the space available for the pigtail harness 140 .
- this configuration allows a single demultiplexer to demultiplex channels from a number of input fibers, thereby minimizing the number of echelle grating DWDM devices required for a multiple input fiber optical system. This further illustrates the flexibility and scalability of the echelle grating DWDM devices in accordance with the invention.
- FIG. 15 is a schematic representation of a preferred embodiment of a stacked input bulk optic echelle DWDM device 160 .
- Input beam ⁇ 1 1-10 from input fiber 142 is directed to the collimating/focusing optic 162 and a collimated beam is then directed off the reflective surface of the reflective echelle grating 164 .
- the diffracted channels ⁇ 1 1 , ⁇ 1 2 then return through the collimating/focusing optic 162 and are dispersed to the fibers comprising the first output row 148 as illustrated by ⁇ 1 1 .
- the collimating/focusing optic has an optical axis 166 and the input fiber 142 and the output row 148 are equally spaced from the optical axis 166 of the collimating/focusing optic in the vertical direction.
- a multiplexed input beam ⁇ 2 1-n is emitted from the input fiber 144 and its various channels ⁇ 2 1 , ⁇ 2 2 are diffracted to the second horizontal output row 150 .
- the centers of the optical fibers in the row are each spaced a distance from the centers of adjacent optical fibers in the row equal to the channel separation of the echelle grating 164 at the focal length of the focusing/collimating optic 162 .
- the propagating ends of the output fibers as well as the propagating ends of the input fibers all lie in a plane spaced the focal length of the collimating/focusing optic from the collimating/focusing optic.
- FIG. 16 is a schematic representation of another embodiment of a stacked input optic echelle DWDM device 160 ′.
- This device is generally the same as that depicted in FIG. 15 and uses the same reference numbers for ease of reference.
- the significant difference between this embodiment and that of FIG. 15 is the input fibers 142 , 144 are deployed with the input fiber 142 co-linear with the second horizontal output row 150 and the input fiber 144 co-linear with the first output row 148 .
- the multiplexed beam ⁇ 1 1-n emitted from the input fiber 142 is diffracted into the first output row 148 and the multiplexed input beam ⁇ 2 1-n emitted from the input fiber 144 is diffracted into the second horizontal output row 150 .
- the input fibers 142 , 144 and the horizontal output rows 148 , 150 are equally spaced from the optical axis 166 .
- FIG. 17 illustrates schematically a four input fiber linear array 200 for multiplex input beams ⁇ 1 1-n , ⁇ 2 1-n , ⁇ 3 1-n and ⁇ 4 1-n and a corresponding 4 by n two dimensional array of single channel fibers 202 for receiving single channel beams, e.g., ⁇ 1 1 , ⁇ 2 2 , ⁇ 3 3 , ⁇ 4 4 .
- the input or multiplex fiber array 200 is perpendicular to the rows of single channel fibers of the array 202 . This further illustrates how the input fibers are spaced the same distance from the optical axis 204 as the corresponding row of single channel output fibers. Additional input and output fibers can be added by stacking them in the same manner as illustrated in FIG. 17 .
- the echelle grating DWDM devices in accordance with the present invention provide for dense channel spacing (0.4 nm) over a given bandwidth, thereby maximizing the number of channels that can be carried by a single fiber for a given bandwidth.
- the channels may be multiplexed/demultiplexed at high resolutions and high efficiencies.
- use of the echelle grating enables a smaller form factor because the angular diffraction allows for shorter focal lengths between the focusing lens and the input/output fibers.
- the use of bulk optical elements provides a system which is easy to manufacture, highly reliable and scalable.
- a waveband dividing element such as a thin film high pass filter allows extremely broad bands of signals to be divided and simultaneously multiplexed or demultiplexed in parallel. Because the device disperses light in a single linear dimension, a plurality of input fibers can be stacked so that each bulk optic echelle grating DWDM device can accommodate multiple input fibers.
Abstract
Description
-
- 1) Minimize focal length, with a focal length of under 6 inches desired.
- 2) Center wavelength in near infrared, approximately at the center of the C-band, 1550 nm.
- 3) A minimal channel spacing (e.g., 0.4 nm or less).
- 4) Large free spectral range, 150 nm.
- 5) System f number in the range of 4-8.
- 6) Rugged, minimum cost system.
-
- 1) Resolution greater than 20,000.
- 2) High dispersion.
- 3) Flat response across spectral range.
- 4) High efficiency or low loss, (>75%).
- 5) Minimize polarization dependent loss.
-
- θb=blaze angle
- α=incident angle
- β=diffracted angle
- In littrow, θb=α≅β
- b=step (reflective surface) size
- d=1/groove density
- a=riser size
-
- Result: For a grating in littrow configuration,
- where W is the illuminated width of the grating. Thus, or W≈(20,000/2)(1550 nm) or W≈1.55 cm
- W×f=fl (focal length), or
- fl≈1.55 cm×8≈124
- Result: For a grating in littrow configuration,
-
- Result: For an echelle grating in littrow, dispersion
- where m=order of diffraction. Thus, assuming channel separation to be at least 80μ, Δλ=4×10−4μ and fl=1.2×104μ, m>1.5b.
- Result: For an echelle grating in littrow, dispersion
-
- which implies
- or m≦10.
- which implies
-
- Result: The diffraction envelope must have a broad enough maximum so that loss is minimized at the extremes of the wavelength range. This dictates b<8.5μ. An order over 7 spreads the light too much across the diffraction peak, resulting in unacceptably low efficiency. Thus: b<8.51μ and m≦7.
-
- Result: Efficiency is a function of step size. A step size must be selected providing a channel width capturing 90% of the signal at a select order.
- b>3μ yields suitable efficiency.
-
- Result: 1.5<m<7.
-
- Result: a=3.88μ at m=5
- 4.65μ at m=6
- 5.43μ at m=7
- Result: a=3.88μ at m=5
-
- 1) wavelength range
- 2) efficiency
- 3) dispersion (D)
- 4) desired resolution
Spread sheet calculations show that b≦5.5λ(or b≦8.5μ), is necessary to make the spectral image >12,000μ at its 90% intensity point. In littrow mode, the angular dispersion is:
Here, λ=1550 nm and Δλ=0.08 nm, yielding a required resolution R=19,375 or approximately 20,000. Assuming a beam size at the grating of 2.1 cm (based upon a fl=124 cm and 10° divergence):
-
- b<1.05 m (Condition C).
or a must have the values:
-
- a=3.38μ
- b=2.241μ
- d=4.48μ.
- All of conditions A-D are satisfied.
-
- Fibers: SM-1250 (Fibercore) outer diameter
- Outer diameter 80μ
- Core diameter 8.3μ
- f Number 4-8
- Lens: Aspheric singlet
- Average focal length (fl)=125
- Optical Signal: λ=1528-1565 nm
- channel spacing 0.4 nm
- Grating:
- d=5.83μ
- θb=52.6°
- order=6
- System Performance:
- D (linear separation)=80μ
- Resolution (R)=20,000
- Efficiency 75%
- an alternative to the use of a littrow configuration as well as the use of collimating lenses, concave mirrors may be used for collimating and focusing the incident beam. A first alternate embodiment of a concave mirror dense wavelength multiplexer/
demultiplexer 40 is shown schematically in FIG. 7. Singlemode input fiber 42 emits adivergent incident beam 44 consisting of multiplexed channels onto the surface of a collimating/focusingconcave mirror 46. The collimatedbeam 48 is then directed in an off-axis manner to the surface of anechelle grating 50. The echelle grating disperses the channels according to their wavelength in the manner discussed above with respect toFIGS. 1 and 4 and the dispersedchannels 52 are reflected off axis off the front surface of the concave collimating/focusingmirror 54. The collimating/focusingmirror 54 then focuses and reflects the various channels to a corresponding fiber of anoutput fiber array 56. As alluded to above with respect to the discussion of the embodiments ofFIGS. 1 and 4 , use of surface reflecting optics such as thecollimating mirror 46 and the concave focusingmirror 54 requires that the optical beams traverse the system in an off-axis geometry which creates significant aberrations (spherical aberrations and coma) that significantly limit the performance of the system. However, the use of the front surface reflecting optics has the potential of facilitating a more compact form factor than is possible with littrow configurations using a single optical lens. As should be readily apparent, combinations of front surface reflecting optics and lenses can be used in non-littrow configurations where necessary to balance form factor minimilization requirements and optical aberrations.
- Fibers: SM-1250 (Fibercore) outer diameter
Claims (32)
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US20901800P | 2000-06-01 | 2000-06-01 | |
US09/628,774 US6415080B1 (en) | 1999-09-03 | 2000-07-29 | Echelle grating dense wavelength division multiplexer/demultiplexer |
US10/121,956 US6647182B2 (en) | 1999-09-03 | 2002-04-12 | Echelle grating dense wavelength division multiplexer/demultiplexer |
US11/180,027 USRE40271E1 (en) | 1999-09-03 | 2005-07-12 | Echelle grating dense wavelength division multiplexer/demultiplexer |
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US09/628,774 Expired - Lifetime US6415080B1 (en) | 1999-09-03 | 2000-07-29 | Echelle grating dense wavelength division multiplexer/demultiplexer |
US10/091,128 Abandoned US20020181856A1 (en) | 1999-09-03 | 2002-03-01 | (De)multiplexer with four 'F' configuration and hybrid lens |
US10/121,956 Ceased US6647182B2 (en) | 1999-09-03 | 2002-04-12 | Echelle grating dense wavelength division multiplexer/demultiplexer |
US11/180,027 Expired - Lifetime USRE40271E1 (en) | 1999-09-03 | 2005-07-12 | Echelle grating dense wavelength division multiplexer/demultiplexer |
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US09/628,774 Expired - Lifetime US6415080B1 (en) | 1999-09-03 | 2000-07-29 | Echelle grating dense wavelength division multiplexer/demultiplexer |
US10/091,128 Abandoned US20020181856A1 (en) | 1999-09-03 | 2002-03-01 | (De)multiplexer with four 'F' configuration and hybrid lens |
US10/121,956 Ceased US6647182B2 (en) | 1999-09-03 | 2002-04-12 | Echelle grating dense wavelength division multiplexer/demultiplexer |
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Also Published As
Publication number | Publication date |
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JP2003532128A (en) | 2003-10-28 |
AU7472000A (en) | 2001-04-10 |
CA2383611A1 (en) | 2001-03-15 |
CA2383611C (en) | 2006-11-14 |
US6647182B2 (en) | 2003-11-11 |
EP1218785A1 (en) | 2002-07-03 |
CN1164961C (en) | 2004-09-01 |
US6415080B1 (en) | 2002-07-02 |
CN1377474A (en) | 2002-10-30 |
WO2001018577A1 (en) | 2001-03-15 |
US6304692B1 (en) | 2001-10-16 |
US20020181856A1 (en) | 2002-12-05 |
US20030026541A1 (en) | 2003-02-06 |
TW518435B (en) | 2003-01-21 |
AU781433B2 (en) | 2005-05-26 |
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Owner name: ONPOINT TECHNOLOGIES, LLC, KANSAS Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:JOHN ZINK COMPANY, LLC;REEL/FRAME:052813/0835 Effective date: 20200601 |