US20170054499A1 - Free space optical (fso) system - Google Patents

Free space optical (fso) system Download PDF

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Publication number
US20170054499A1
US20170054499A1 US15/243,800 US201615243800A US2017054499A1 US 20170054499 A1 US20170054499 A1 US 20170054499A1 US 201615243800 A US201615243800 A US 201615243800A US 2017054499 A1 US2017054499 A1 US 2017054499A1
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United States
Prior art keywords
free space
optical
terminal
space optical
sensor
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Abandoned
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US15/243,800
Inventor
J. Elon Graves
William Dickson
Greg Mitchell
Andy McClaren
Dave Pechner
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SA Photonics Inc
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SA Photonics Inc
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Priority to US15/243,800 priority Critical patent/US20170054499A1/en
Publication of US20170054499A1 publication Critical patent/US20170054499A1/en
Assigned to SA Photonics, Inc. reassignment SA Photonics, Inc. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: GRAVES, J. ELON, PECHNER, DAVE, MCCLAREN, ANDY, MITCHELL, GREG, DICKSON, WILLIAM
Priority to US15/815,562 priority patent/US10389442B2/en
Abandoned legal-status Critical Current

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/11Arrangements specific to free-space transmission, i.e. transmission through air or vacuum
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/11Arrangements specific to free-space transmission, i.e. transmission through air or vacuum
    • H04B10/112Line-of-sight transmission over an extended range
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/11Arrangements specific to free-space transmission, i.e. transmission through air or vacuum
    • H04B10/112Line-of-sight transmission over an extended range
    • H04B10/1123Bidirectional transmission
    • H04B10/1125Bidirectional transmission using a single common optical path
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/40Transceivers
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/26Optical coupling means
    • G02B6/32Optical coupling means having lens focusing means positioned between opposed fibre ends
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/50Transmitters
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/60Receivers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J14/00Optical multiplex systems
    • H04J14/02Wavelength-division multiplex systems

Definitions

  • a two-node bi-directional Free Space Optical (FSO) communication system the two FSO nodes exchange data encoded on optical carrier beams sent across an unobstructed line of sight (LOS) between the two nodes.
  • LOS line of sight
  • FIG. 1 a conventional two-node bi-directional system is illustrated.
  • a first node 2 and a second node 3 communicate by transmitting and receiving a signal 6 , 7 sent between the nodes.
  • the data can be encoded on the signals in any matter; a binary, on-off, exemplary signal is illustrated for simplicity.
  • Each node has an optical output 4 for transmitting the desired signal 6 , 7 , and also an optical input 5 for receiving the transmitted signal. Once received, the internal electronics of the node can decode the signal and obtain the transmitted data.
  • the communication system only works if the transmit path of the first node is aligned with the receiving components of the second node.
  • conventional systems have split the received beam into two paths: one for detection and one for alignment.
  • the exemplary system uses a beam splitter and separate detectors as an alignment sensor and as a detector (processing) sensor.
  • the resulting system is complex as it requires beam splitting and multiple paths to perform each function (e.g. alignment and detecting). Errors are also introduced into the system through the misalignment and/or drift between the multiple paths.
  • a free space optical terminal including a wave front sensor comprising a free space in an interior region of the wave front sensor; and a receiver within the free space of the wave front sensor.
  • the resulting free space optical (FSO) terminal therefore may have a wave front sensor used for aligning the system and a detector used to receive a data transmission received on an optical beam.
  • the wave front sensor and the detector are different optical components, and the terminal may be configured such that a first portion of the received light is received at the wave front sensor and a second portion of the received light source is received at the detector, where a beam splitter is not used to separate the first portion from the second portion. Therefore, the first portion of light and the second portion of light may follow the same optical beam path along an entire length or along a portion of a length at the sensors within the system. In an exemplary embodiment, the first portion circumscribes the second portion.
  • FIG. 1 illustrates and exemplary prior art free space optical system.
  • FIG. 2 illustrates an exemplary FSO node according to embodiments described herein.
  • FIG. 3 illustrates and exemplary front elevation view of a detection sensor and alignment sensor described herein.
  • FIGS. 4-6 illustrate exemplary block diagram embodiments of FSO nodes having a common transmit and receive aperture—co-boresighted node according to embodiments described herein.
  • FIGS. 7A-7B illustrate exemplary system component configurations according to embodiments described herein.
  • FIG. 8A illustrates an exemplary light alignment path on an exemplary alignment sensor according to embodiments described herein.
  • FIG. 8B illustrates an exemplary method of aligning a system according to embodiments described herein.
  • FIG. 9 illustrates a representative transfer function during an alignment.
  • Exemplary embodiments may be used to greatly simplify the complexity of a free space optical (FSO) terminal, while maintaining the benefit achieved by separate alignment and detection sensors.
  • exemplary FSO terminals according to embodiments described herein include separate detection sensor(s) and alignment sensor(s) configured or positioned such that the received optical path is maintained as a single received optical path. Accordingly, exemplary embodiments may reduce misalignment into the system by not subdividing the paths to the separate detectors.
  • An exemplary FSO terminal may be capable of unidirectional or bi-directional high bandwidth optical communications.
  • embodiments of the invention may be described and illustrated herein in terms of an alignment sensor and detection sensor, it should be understood that embodiments of this invention are not so limited, but are additionally applicable to functional components of the system.
  • the respective sensors may be used for other purposes.
  • exemplary embodiments may be used when it is desired to have two system components using portions of the same free space signal and it is desired to keep the components along the same signal path and not split the signal into separate paths.
  • the detector and alignment sensors described herein may be used for any system function.
  • exemplary embodiments may be adapted to other free space systems, not necessarily limited to optical applications or communication systems.
  • FIG. 2 illustrates an exemplary FSO node 10 according to embodiments described herein.
  • the exemplary node 10 include transmit and receive optics as in conventional systems, which are not illustrated for purposes of simplicity. However, as shown in the exploded portion illustrating the receive path, the detection sensor 12 is along the same optical path (receiving beam path 18 ) as the alignment sensor 14 . In an exemplary embodiment, the alignment is achieved by incorporating a hole, aperture, or passage in the alignment sensor 14 such that a portion of the received beam falls on the alignment sensor and a portion of the receive beam falls on the detection sensor 12 .
  • the detection sensor is positioned out of plane from the alignment sensor.
  • the system includes a lens 16 or other optics for directing and/or focusing the received light 18 toward the sensor(s).
  • the detection sensor 12 is shown positioned approximately at the focal point of the received path as set by lens 16 .
  • the alignment detector is shown positioned in a plane after the lens 16 and before the focal point at the detection sensor 12 , relative to the received optical path 18 (or between the focal point and the optics defining the focal point).
  • the detection sensor 12 may be in plane with the alignment sensor 14 , out of plane with the alignment sensor 14 , or before or after the alignment sensor 14 .
  • the purpose of the sensors may also be swapped such that sensor 14 is the detection sensor and detector 12 is the alignment sensor.
  • the alignment sensor is a central sensor, while the detection sensor is the annular sensor. Multiple annular sensors may be incorporated for different purposes to permit two or more detector functions on the same optical path.
  • the component shown as the detection sensor 12 may also be any combination of optical components.
  • the detection sensor may be replaced with other components, such as mirrors, lenses, splitters, optical fibers, etc. that is used to direct the light before the detection sensor. Exemplary configurations of such additional component combinations are described with respect to FIGS. 4-5 .
  • FIG. 3 illustrates and exemplary front elevation view of the detection sensor 12 and alignment sensor 14 having a common optical receive path as seen elevated from a direction normal the detection surface.
  • the detection sensor 12 and alignment sensor 14 are concentric.
  • at least the outer perimeter of the alignment sensor 14 circumscribes and is positioned radially outside the detection sensor 12 when viewed from a front profile.
  • the alignment sensor 14 may be longitudinally offset from the detection sensor 12 along the optical receive path but still may radially circumscribe the detection sensor when viewed in profile from a perspective of the optical path (front face of the sensor(s)).
  • FIG. 3 illustrates the detection sensor 12 as being radially smaller than an inner diameter of the aperture of the alignment sensor 14 . However, such a relationship is not necessary.
  • the outer diameter of the detection sensor 12 is greater than the inner diameter of the passage defined by the alignment sensor 14 .
  • FIG. 3 illustrates an incoming beam 18 offset on the alignment sensor 14 .
  • an exemplary method of aligning a system 60 may use the coaxial alignment and detection sensors.
  • the alignment system and detection system are coaxially aligned.
  • the alignment system may be the quad-cell as described herein with respect to FIG. 3 or some other combination of optics/sensors to obtain a segmented detection of the incoming light.
  • the detection system may be the detection sensor as illustrated with respect to FIG. 3 .
  • the detection system may also include other configurations such as those of FIGS. 4-5 in which the light is further manipulated through other optics, such as splitter(s), len(s), optical fiber(s), mirror(s), and combinations thereof before reaching the detection sensor.
  • the coaxial arrangement permits the same receive optical path to be used with two detection systems, where each detection system is used and can be optimized for its own function (i.e. alignment/detection/other).
  • the alignment sensor can detect the horizontal and vertical displacement of the beam 18 on the detector face.
  • the displacements may be determined or calculated based on a comparison of the detected signals from step 64 .
  • the x displacement will be the signal difference from the total of the first and second quadrants minus the total from of the third and fourth quadrants divided by the total signal: [( 14 a + 14 b ) ⁇ ( 14 c + 14 d )]/( 14 a + 14 b + 14 c + 14 d ).
  • the y displacement can be determined by comparing the signal from the upper quadrants to that of the lower quadrants [( 14 a + 14 d ) ⁇ ( 14 b + 14 c )]/( 14 a + 14 b + 14 c + 14 d ).
  • the system may be manually or automatically adjusted to realign the node such that the received beam 18 is centered on the detection sensor 14 .
  • the detection sensor may be used to detect the incoming light, which is decoded by the system.
  • FIGS. 4 and 5 illustrate exemplary embodiments in which the transmit and receive aperture of the node are the same—co-boresighted node. In these cases, the transmit and receive paths are shared for at least a portion of the optical path traveled within the node. Ultimately, the transmit and receive paths will split, and FIGS. 4 and 5 illustrate different configurations of when the split may occur.
  • FIGS. 4-6 are system block diagrams to illustrate exemplary features and alternatives within the scope of the present invention. For example, different combinations of optics are uses in different orders to integrate and/or separate the optical path at different points. The system components may be integrated, separated, rearranged, removed, duplicated, or other components added and remain within the scope of the instant disclosure.
  • FIGS. 4-6 illustrate a co-boresighted node in which the transmit and receive optical paths are aligned, co-axial, or concentric for at least a portion of the optical path. As shown, the FSO node comprises a common transmit and receive aperture.
  • FIG. 4 illustrates an exemplary co-boresighted FSO node having a common transmit and receive optical path.
  • the node 20 includes a common transmit and receive path for outgoing and incoming optical signals.
  • the system can include a co-boresighted beam steering unit 27 that can align the beams with the internal optics.
  • the common optical paths may then be split into the separate transmit and receive paths at a splitter or separator 25 .
  • This component can be any optical component or beam splitter to separate the beam paths, such as a dichromic mirror, circulator, etc.
  • the transmit beam path comprises an optical transmitter 23 to generate the optical signal according to the FSO Modem and processor.
  • the received beam path comprises the optics associated with aligning and detecting the signal.
  • the received optics 26 may include any combination of optical components for directing, focusing, or otherwise manipulating the incoming beam for detection, processing, orienting, directing, filtering, or other function.
  • the received alignment sensor 24 passes at least a portion of the light to the received detection sensor 22 such that these two sensors are along the same beam path.
  • the received alignment sensor 24 is configured as described herein.
  • the received alignment sensor 24 may be any configuration of sensors to receive a portion of the received light from the outer periphery of the light beam, and passes the portion of the light at the center of the beam.
  • the alignment sensor 24 and detection sensor 22 may be interchanges, may be in the same focal plane, may be longitudinally displaced along the received beam path, or otherwise arranged as described herein.
  • the alignment sensor 24 communications with PAT controller 21 to adjust the optics and beam steering in response to the detected signal as described herein.
  • the detection sensor 22 communications with the FSO modem to analyze and decode the received optical signals once converted to electrical form.
  • the optical path between any system components may be along a free space path, through an optical component such as an optical fiber, or combinations thereof.
  • FIG. 5 illustrates an exemplary co-boresighted FSO node having a common transmit and receive optical path.
  • the beam steering platform 37 includes the transmit and receive optics for filtering, directing, focusing, etc. the beam in and out of the FSO node 30 .
  • a receive alignment sensor 34 is configured to receive a portion of the received light and pass a portion of the received light. The passed, unobstructed light is then split at a beam splitter 35 between the receive path to the received detector 32 and the transmit source 33 , each of which are coupled to the FSO modem for signal processing and control.
  • the PAT controller 31 controls the beam steering unit 37 based on the detected signal from the alignment sensor 34 .
  • This configuration may use free optical paths and/or guided optical paths, such as through a light guide or optical fiber.
  • a terminal end of an optical fiber 38 is positioned at the focal point of the receive optics to direct the light through the system.
  • the light path between box 38 and 35 or other components may be through an optical fiber.
  • an optical fiber may be positioned at or adjacent the focal point of a focusing lens within the receive/transmit optics 36 .
  • the optical fiber may couple to two other optical fibers for directing the light to and from the receive sensor 32 and transmit source 33 .
  • the beam splitter 35 or other optical components used herein may include a circulator, splitters, optical fibers, and other components as described in U.S. Pat. No. 8,260,146 and U.S. Pat. No. 6,721,510, incorporated by reference in their entirety herein.
  • FIG. 6 illustrates an exemplary arrangement in which the alignment sensor 44 is forward in the system optical path adjacent the node aperture.
  • transmit and receive optics 46 may be used to focus or otherwise manipulate the light onto the alignment system 44 and through the rest of the system. After passing through the aperture of the alignment sensor, the light may be split at splitter 45 and focused through more optics or otherwise directed through optical fibers 48 to the detection sensor 42 and transmit source 43 respectively.
  • the PAT controller 41 may be used to control any combination of the Tx/Rx optics 46 and/or the optical fibers 48 leading to RX detector 42 and/or transmit optical source 43 .
  • FIG. 7A illustrates a component representation of the block diagram of FIG. 6 for illustrative purposes.
  • the incoming beam 18 is focused through optic 16 (Tx/Rx optics 46 of FIG. 6 ) that may be any configuration or combination thereof described herein.
  • a portion of the light 18 a is focused on alignment sensor 14 RX alignment sensor 44 of FIG. 6 ), while a portion is passed through aperture of alignment sensor 14 .
  • Additional Tx/Rx optics 46 of FIG. 6 may include a series of lenses 12 b and/or splitter 12 c to separate and focus the transmit and receive beams on respective terminal ends of optical fibers 12 d .
  • the PAT controller 41 may be used to translate the optical fibers 12 d in one, two, or three dimensions to assist in system alignment.
  • Exemplary embodiments of the alignment sensor comprise a sensor portion defining an outer section and an aperture through a central section.
  • the central section may be coaxial with the center of the optic or may be off-center from the optic.
  • the alignment sensor therefore includes a central aperture 13 circumscribed by a plurality of sensors.
  • the central aperture is surrounded by two or more and preferable three to six detectors.
  • the detectors may circumscribe the aperture and substantially fill a perimeter around or substantially surround the aperture, where substantially can be understood by a person of skill in the art to include more than a majority and is approximately the entire perimeter but accounts for dead space between sensors and positioning tolerances required between components.
  • the detection sensor 12 (either an outer perimeter or the working surface of the detector area) can be larger, smaller, or approximately equal to the aperture.
  • the detection sensor 12 may be positioned in front of, flush with, or behind the alignment sensor surface 14 .
  • an exemplary alignment sensor is a quadcell having four distinct detection areas 14 a - 14 d .
  • a quadcell detector may be used as the plurality of detectors circumscribing the aperture.
  • the quadcell includes a central hole positioned between the four detecting cells or quadrants. The hole is sized to permit the desired beam transmit/receive signal to align with the detection sensor or other optical components as described herien.
  • the quadcell may be positioned such that the detection sensor axis (normal to the sensing face) is aligned with the center of the quadcell.
  • the detection sensor may be positioned at the center of the quadcell or may be positioned behind the quadcell (or on an opposing side than the inlet/outlet aperture of the terminal).
  • Exemplary embodiments may also reposition the detection sensor and use other optical components to direct the beam to the detection sensor, such as an optical fiber. In which case, the terminal end of the optical fiber can be positioned in place of the detection sensor as described herein.
  • FIG. 7B illustrates an exemplary configuration similar to FIG. 3 with the inclusive of an internal baffle to isolate transmitted light from the alignment sensor for an FSO node having a common transmit/receive aperture.
  • the alignment sensor may detect backscatter from the transmitted wave and cause the system to realign based on auxiliary backscatter light instead of that received from the opposing FSO node.
  • an internal baffle cone could serve to provide isolation between the transmit and receive beams if a similar wavelength is used.
  • a baffle 17 in incorporated in the optical path to separate the received light 18 into two portions: the detected portion 18 b and the alignment portion 18 a .
  • the detected light 18 b is focused onto a terminal end of an optical fiber 12 a configured to receive light and direct the light to a detection sensor, and transmit light originating from a light source.
  • the alignment light portion is focused or directed onto the alignment sensor 14 .
  • the transmitted beam is propagated from the optical fiber 12 a , the light is separated or isolated by the baffle 17 and does prevented from entering the alignment portion 18 a.
  • an exemplary free space optical node may include any combination of:
  • the Tx and Rx can be separated with a beam splitter or optical circulator; for use with a Tx/Rx fiber, the quadcell and Tx/Rx fiber could be integrated into a structure that eliminates the need for beamsplitters, simplifying the mechanical design; and/or an internal baffle cone could serve to provide isolation between Tx and Rx if a similar wavelength is used.
  • Exemplary embodiments may be used to align and use (send/receive signals) the terminal while reducing system complexity.
  • Exemplary embodiments use an increased lens size and use the light with a higher numerical aperture (NA) on a wave front sensor (WFS), such as a quadcell with a hole.
  • WFS wave front sensor
  • An annular ring from this section of the objective will be seen on the quadcell.
  • the inside annulus comes from the hole in the quad while the outside comes from the edges of the objective. Any angular change moves this outside edge shifting the balance of light on the quadrants.
  • Part of the tuning parameters of the system include the position of the optics, such as the sensors and/or optical fibers (see, e.g. FIG. 7A ).
  • a position of the alignment wave front sensor inside a focal plane of the corresponding light on the detection sensor changes the hole size, and also allows changing the field of view (FOV) and linear region over which it works.
  • FOV field of view
  • linearity only really matters when the beam is centered and the link is in operation. During acquisition with large angle errors, knowing the sign is enough to steer towards the center.
  • the detection sensor and alignment sensor may be along an optical path, but used with different optical beams. Specifically, if the two sensors detect different wavelengths and transparent to the wavelength of the other sensor, then the backscatter or other interference between the sensors is reduced or eliminated. However, two light sources are necessary at the sending node to be received. For example, if an FSO system is using 1550 nm wavelength light for transmitting data (the detection sensor), a silicon quadcell could be used as an alignment sensor as it is transparent at the data wavelength. In this embodiment, a guide beacon would be chosen for Silicon and the data transmitted on 1550 nm. Therefore, an extremely high isolation can be achieved without the baffle cone.
  • FIG. 8A illustrates an exemplary light alignment on an exemplary quadcell as the beam is positioned.
  • the receive beam is seen on the quadcell.
  • the upper quadrants detect more light and therefore, the terminal can be moved upwards, or the transmitting beam (other terminal) moved downwards.
  • the beam can be aligned such that it is centered on the quadcell and therefor on the centered optical fiber within the aperture of the quadcell.
  • a representative transfer function is illustrated in FIG. 9 . This one is notional for a particular application, but shows the basic behavior.
  • Exemplary embodiments described herein include using a free space optical terminal in which a portion of the received beam is used for aligning the system and a separate portion of the beam is used for receiving, transmitting, and any combination thereof for a data signal.
  • the exemplary method can be used without a beam splitter that separates the beam into separate paths.
  • the first portion of the beam used for alignment is an exterior portion circumscribing the second portion used for transmitting and/or receiving the data signal. Therefore, the first portion may be a central portion, while the second portion may be a circumferential exterior portion of the same beam.
  • Exemplary embodiments may also capture the entire beam for communication by positioning the detection sensor before the alignment sensor and focusing the light on the detection sensor.
  • a controller is coupled to one or more optical components to adjust or control the position of the components and are able to position, aligned, or alter the working components of the system.
  • the method may include receiving an optical beam at the FSO terminal.
  • the method includes positioning the beam such that a first portion falls on one or more detector(s) for aligning the terminal with the received beam (or any first system function), and a second portion falls on one or more receiver(s), such as a fiber optic or detection sensor, for detecting and/or directing the signal for analyzing a data signal carried on the received light.
  • the system is configured such that the detector(s) circumferentially surround the receiver(s).
  • a quadcell is used to illustrate the plurality of detectors around the optical fiber or detection sensor.
  • the detectors may be of the same kind, or may be different.
  • There are variants for the tilt sensor choice and a quadcell is not exclusive. Anything from normal quads to custom multi pixel detectors including focal plane arrays with random sub array read out may be used.
  • Exemplary embodiments permit the light to pass through a hole, aperture, or space between detectors, or have a material that transmits the light used for data transmission.
  • the receiver for receiving and transmitting the light for data transmission is shown and described interior the detectors for alignment or other system function, such that the detectors circumferentially surround the receiver.
  • these functions and/or components may be switched and is not limited to the exemplary embodiment described.
  • substantially fill or “substantial” is intended to mean greater than a majority, such as more than 75%. A majority is intended to mean 50%. Numerical ranges are also used herein and are approximations only. Approximations are understood to be within the person of skill in the art. For example, when a series of detectors approximately fully surround or circumscribe an optical fiber, it is understood that natural dead space or gaps must accompany the areas between the detectors. These approximations are within the skill of the art to determine and may depend on system components, tolerances, wavelengths, system size, etc. Therefore, approximately fully surround is understood to have detectors positioned around the detectors to minimize the dead space, but would be dependent upon the kind and quantity of detectors selected. An optical beam path is understood to be the linear longitudinal direction of a propagated beam.
  • Exemplary embodiments may be incorporated into a free space optical terminal used for both transmitting and receiving data signals.
  • the FSO terminal may use common optics for transmitting and receiving a data signal therefrom/thereto.
  • U.S. application Ser. No. 14/608,166 titled “Data Retransmission for Atmospheric Free Space Optical Communication System,” owned by the present applicant, and incorporated by reference in its entirety herein, discloses an FSO unit that may use a common aperture and optics for transmitting and receiving a data signal.
  • Exemplary embodiments described herein may be used in conjunction with or replace the components for alignment and detecting. For example, the components labeled 20, 22, and 24 of FIG.

Abstract

A detector configuration for use in a free space optical (FSO) node for transmitting and/or receiving optical signals has a plurality of sensors for detecting received optical signals. The plurality of sensors is configured along a common optical path and are used for separate functions. According, the detectors may be optimized for the respective function.

Description

    PRIORITY
  • This application claims priority to U.S. Application No. 62/208,561, filed Aug. 21, 2015, which is incorporated by reference in its entirety into this application.
  • BACKGROUND
  • In a two-node bi-directional Free Space Optical (FSO) communication system, the two FSO nodes exchange data encoded on optical carrier beams sent across an unobstructed line of sight (LOS) between the two nodes. As shown in FIG. 1, a conventional two-node bi-directional system is illustrated. As shown, a first node 2 and a second node 3 communicate by transmitting and receiving a signal 6, 7 sent between the nodes. The data can be encoded on the signals in any matter; a binary, on-off, exemplary signal is illustrated for simplicity. Each node has an optical output 4 for transmitting the desired signal 6, 7, and also an optical input 5 for receiving the transmitted signal. Once received, the internal electronics of the node can decode the signal and obtain the transmitted data.
  • The communication system only works if the transmit path of the first node is aligned with the receiving components of the second node. In order to optimize tracking, conventional systems have split the received beam into two paths: one for detection and one for alignment. As shown in FIG. 1, the exemplary system uses a beam splitter and separate detectors as an alignment sensor and as a detector (processing) sensor. The resulting system is complex as it requires beam splitting and multiple paths to perform each function (e.g. alignment and detecting). Errors are also introduced into the system through the misalignment and/or drift between the multiple paths.
  • SUMMARY
  • A free space optical terminal is disclosed including a wave front sensor comprising a free space in an interior region of the wave front sensor; and a receiver within the free space of the wave front sensor. The resulting free space optical (FSO) terminal therefore may have a wave front sensor used for aligning the system and a detector used to receive a data transmission received on an optical beam. In an exemplary embodiment, the wave front sensor and the detector are different optical components, and the terminal may be configured such that a first portion of the received light is received at the wave front sensor and a second portion of the received light source is received at the detector, where a beam splitter is not used to separate the first portion from the second portion. Therefore, the first portion of light and the second portion of light may follow the same optical beam path along an entire length or along a portion of a length at the sensors within the system. In an exemplary embodiment, the first portion circumscribes the second portion.
  • DRAWINGS
  • FIG. 1 illustrates and exemplary prior art free space optical system.
  • FIG. 2 illustrates an exemplary FSO node according to embodiments described herein.
  • FIG. 3 illustrates and exemplary front elevation view of a detection sensor and alignment sensor described herein.
  • FIGS. 4-6 illustrate exemplary block diagram embodiments of FSO nodes having a common transmit and receive aperture—co-boresighted node according to embodiments described herein.
  • FIGS. 7A-7B illustrate exemplary system component configurations according to embodiments described herein.
  • FIG. 8A illustrates an exemplary light alignment path on an exemplary alignment sensor according to embodiments described herein. FIG. 8B illustrates an exemplary method of aligning a system according to embodiments described herein.
  • FIG. 9 illustrates a representative transfer function during an alignment.
  • DESCRIPTION
  • The following detailed description illustrates by way of example, not by way of limitation, the principles of the invention. This description will clearly enable one skilled in the art to make and use the invention, and describes several embodiments, adaptations, variations, alternatives and uses of the invention, including what is presently believed to be the best mode of carrying out the invention. It should be understood that the drawings are diagrammatic and schematic representations of exemplary embodiments of the invention, and are not limiting of the present invention nor are they necessarily drawn to scale.
  • Exemplary embodiments may be used to greatly simplify the complexity of a free space optical (FSO) terminal, while maintaining the benefit achieved by separate alignment and detection sensors. Accordingly, exemplary FSO terminals according to embodiments described herein include separate detection sensor(s) and alignment sensor(s) configured or positioned such that the received optical path is maintained as a single received optical path. Accordingly, exemplary embodiments may reduce misalignment into the system by not subdividing the paths to the separate detectors. An exemplary FSO terminal may be capable of unidirectional or bi-directional high bandwidth optical communications.
  • Although embodiments of the invention may be described and illustrated herein in terms of an alignment sensor and detection sensor, it should be understood that embodiments of this invention are not so limited, but are additionally applicable to functional components of the system. For example, the respective sensors may be used for other purposes. Accordingly, exemplary embodiments may be used when it is desired to have two system components using portions of the same free space signal and it is desired to keep the components along the same signal path and not split the signal into separate paths. Accordingly, the detector and alignment sensors described herein may be used for any system function. Moreover, exemplary embodiments may be adapted to other free space systems, not necessarily limited to optical applications or communication systems.
  • FIG. 2 illustrates an exemplary FSO node 10 according to embodiments described herein. The exemplary node 10 include transmit and receive optics as in conventional systems, which are not illustrated for purposes of simplicity. However, as shown in the exploded portion illustrating the receive path, the detection sensor 12 is along the same optical path (receiving beam path 18) as the alignment sensor 14. In an exemplary embodiment, the alignment is achieved by incorporating a hole, aperture, or passage in the alignment sensor 14 such that a portion of the received beam falls on the alignment sensor and a portion of the receive beam falls on the detection sensor 12.
  • As shown, the detection sensor is positioned out of plane from the alignment sensor. However, such configuration is not necessary. In an exemplary embodiment, the system includes a lens 16 or other optics for directing and/or focusing the received light 18 toward the sensor(s). The detection sensor 12 is shown positioned approximately at the focal point of the received path as set by lens 16. The alignment detector is shown positioned in a plane after the lens 16 and before the focal point at the detection sensor 12, relative to the received optical path 18 (or between the focal point and the optics defining the focal point). The detection sensor 12 may be in plane with the alignment sensor 14, out of plane with the alignment sensor 14, or before or after the alignment sensor 14. The purpose of the sensors may also be swapped such that sensor 14 is the detection sensor and detector 12 is the alignment sensor. For example, the alignment sensor is a central sensor, while the detection sensor is the annular sensor. Multiple annular sensors may be incorporated for different purposes to permit two or more detector functions on the same optical path. The component shown as the detection sensor 12 may also be any combination of optical components. For example, the detection sensor may be replaced with other components, such as mirrors, lenses, splitters, optical fibers, etc. that is used to direct the light before the detection sensor. Exemplary configurations of such additional component combinations are described with respect to FIGS. 4-5.
  • FIG. 3 illustrates and exemplary front elevation view of the detection sensor 12 and alignment sensor 14 having a common optical receive path as seen elevated from a direction normal the detection surface. As shown, the detection sensor 12 and alignment sensor 14 are concentric. In an exemplary embodiment, at least the outer perimeter of the alignment sensor 14 circumscribes and is positioned radially outside the detection sensor 12 when viewed from a front profile. The alignment sensor 14 may be longitudinally offset from the detection sensor 12 along the optical receive path but still may radially circumscribe the detection sensor when viewed in profile from a perspective of the optical path (front face of the sensor(s)). FIG. 3 illustrates the detection sensor 12 as being radially smaller than an inner diameter of the aperture of the alignment sensor 14. However, such a relationship is not necessary. As shown in FIG. 2, the outer diameter of the detection sensor 12 is greater than the inner diameter of the passage defined by the alignment sensor 14.
  • FIG. 3 illustrates an incoming beam 18 offset on the alignment sensor 14. As provided in FIG. 6, an exemplary method of aligning a system 60 may use the coaxial alignment and detection sensors. At step 62, the alignment system and detection system are coaxially aligned. The alignment system may be the quad-cell as described herein with respect to FIG. 3 or some other combination of optics/sensors to obtain a segmented detection of the incoming light. The detection system may be the detection sensor as illustrated with respect to FIG. 3. However, the detection system may also include other configurations such as those of FIGS. 4-5 in which the light is further manipulated through other optics, such as splitter(s), len(s), optical fiber(s), mirror(s), and combinations thereof before reaching the detection sensor. The coaxial arrangement permits the same receive optical path to be used with two detection systems, where each detection system is used and can be optimized for its own function (i.e. alignment/detection/other).
  • At step 64, the alignment sensor can detect the horizontal and vertical displacement of the beam 18 on the detector face. At step 66, the displacements may be determined or calculated based on a comparison of the detected signals from step 64. For example, the ratio of the difference of the light on each half of the detector divided by the whole by be used to determine a percentage offset from the center of the detector in orthogonal (x-y) directions. In this case, the x displacement will be the signal difference from the total of the first and second quadrants minus the total from of the third and fourth quadrants divided by the total signal: [(14 a+14 b)−(14 c+14 d)]/(14 a+14 b+14 c+14 d). Similarly, the y displacement can be determined by comparing the signal from the upper quadrants to that of the lower quadrants [(14 a+14 d)−(14 b+14 c)]/(14 a+14 b+14 c+14 d). At step 68, the system may be manually or automatically adjusted to realign the node such that the received beam 18 is centered on the detection sensor 14. After the system is aligned, at step 70, the detection sensor may be used to detect the incoming light, which is decoded by the system.
  • FIGS. 4 and 5 illustrate exemplary embodiments in which the transmit and receive aperture of the node are the same—co-boresighted node. In these cases, the transmit and receive paths are shared for at least a portion of the optical path traveled within the node. Ultimately, the transmit and receive paths will split, and FIGS. 4 and 5 illustrate different configurations of when the split may occur.
  • FIGS. 4-6 are system block diagrams to illustrate exemplary features and alternatives within the scope of the present invention. For example, different combinations of optics are uses in different orders to integrate and/or separate the optical path at different points. The system components may be integrated, separated, rearranged, removed, duplicated, or other components added and remain within the scope of the instant disclosure. FIGS. 4-6 illustrate a co-boresighted node in which the transmit and receive optical paths are aligned, co-axial, or concentric for at least a portion of the optical path. As shown, the FSO node comprises a common transmit and receive aperture.
  • FIG. 4 illustrates an exemplary co-boresighted FSO node having a common transmit and receive optical path. As shown, the node 20 includes a common transmit and receive path for outgoing and incoming optical signals. The system can include a co-boresighted beam steering unit 27 that can align the beams with the internal optics. The common optical paths may then be split into the separate transmit and receive paths at a splitter or separator 25. This component can be any optical component or beam splitter to separate the beam paths, such as a dichromic mirror, circulator, etc. Once separated, the transmit beam path comprises an optical transmitter 23 to generate the optical signal according to the FSO Modem and processor. The received beam path comprises the optics associated with aligning and detecting the signal. The received optics 26 may include any combination of optical components for directing, focusing, or otherwise manipulating the incoming beam for detection, processing, orienting, directing, filtering, or other function. As shown, the received alignment sensor 24 passes at least a portion of the light to the received detection sensor 22 such that these two sensors are along the same beam path. The received alignment sensor 24 is configured as described herein. For example, the received alignment sensor 24 may be any configuration of sensors to receive a portion of the received light from the outer periphery of the light beam, and passes the portion of the light at the center of the beam. As described herein the alignment sensor 24 and detection sensor 22 may be interchanges, may be in the same focal plane, may be longitudinally displaced along the received beam path, or otherwise arranged as described herein. The alignment sensor 24 communications with PAT controller 21 to adjust the optics and beam steering in response to the detected signal as described herein. The detection sensor 22 communications with the FSO modem to analyze and decode the received optical signals once converted to electrical form. The optical path between any system components may be along a free space path, through an optical component such as an optical fiber, or combinations thereof.
  • FIG. 5 illustrates an exemplary co-boresighted FSO node having a common transmit and receive optical path. In this configuration, a larger portion of the common path is integrated so consolidated control and alignment. As shown, the beam steering platform 37 includes the transmit and receive optics for filtering, directing, focusing, etc. the beam in and out of the FSO node 30. A receive alignment sensor 34 is configured to receive a portion of the received light and pass a portion of the received light. The passed, unobstructed light is then split at a beam splitter 35 between the receive path to the received detector 32 and the transmit source 33, each of which are coupled to the FSO modem for signal processing and control. The PAT controller 31 controls the beam steering unit 37 based on the detected signal from the alignment sensor 34. This configuration may use free optical paths and/or guided optical paths, such as through a light guide or optical fiber. As shown, a terminal end of an optical fiber 38 is positioned at the focal point of the receive optics to direct the light through the system. The light path between box 38 and 35 or other components may be through an optical fiber. As shown, an optical fiber may be positioned at or adjacent the focal point of a focusing lens within the receive/transmit optics 36. The optical fiber may couple to two other optical fibers for directing the light to and from the receive sensor 32 and transmit source 33. The beam splitter 35 or other optical components used herein may include a circulator, splitters, optical fibers, and other components as described in U.S. Pat. No. 8,260,146 and U.S. Pat. No. 6,721,510, incorporated by reference in their entirety herein.
  • FIG. 6 illustrates an exemplary arrangement in which the alignment sensor 44 is forward in the system optical path adjacent the node aperture. As shown, transmit and receive optics 46 may be used to focus or otherwise manipulate the light onto the alignment system 44 and through the rest of the system. After passing through the aperture of the alignment sensor, the light may be split at splitter 45 and focused through more optics or otherwise directed through optical fibers 48 to the detection sensor 42 and transmit source 43 respectively. The PAT controller 41 may be used to control any combination of the Tx/Rx optics 46 and/or the optical fibers 48 leading to RX detector 42 and/or transmit optical source 43.
  • FIG. 7A illustrates a component representation of the block diagram of FIG. 6 for illustrative purposes. As shown, the incoming beam 18 is focused through optic 16 (Tx/Rx optics 46 of FIG. 6) that may be any configuration or combination thereof described herein. A portion of the light 18 a is focused on alignment sensor 14 RX alignment sensor 44 of FIG. 6), while a portion is passed through aperture of alignment sensor 14. Additional Tx/Rx optics 46 of FIG. 6 may include a series of lenses 12 b and/or splitter 12 c to separate and focus the transmit and receive beams on respective terminal ends of optical fibers 12 d. The PAT controller 41 may be used to translate the optical fibers 12 d in one, two, or three dimensions to assist in system alignment.
  • Exemplary embodiments of the alignment sensor comprise a sensor portion defining an outer section and an aperture through a central section. The central section may be coaxial with the center of the optic or may be off-center from the optic. The alignment sensor therefore includes a central aperture 13 circumscribed by a plurality of sensors. In an exemplary embodiment, the central aperture is surrounded by two or more and preferable three to six detectors. The detectors may circumscribe the aperture and substantially fill a perimeter around or substantially surround the aperture, where substantially can be understood by a person of skill in the art to include more than a majority and is approximately the entire perimeter but accounts for dead space between sensors and positioning tolerances required between components. The detection sensor 12 (either an outer perimeter or the working surface of the detector area) can be larger, smaller, or approximately equal to the aperture. The detection sensor 12 may be positioned in front of, flush with, or behind the alignment sensor surface 14.
  • As seen in FIG. 3, an exemplary alignment sensor is a quadcell having four distinct detection areas 14 a-14 d. As shown, a quadcell detector may be used as the plurality of detectors circumscribing the aperture. The quadcell includes a central hole positioned between the four detecting cells or quadrants. The hole is sized to permit the desired beam transmit/receive signal to align with the detection sensor or other optical components as described herien. The quadcell may be positioned such that the detection sensor axis (normal to the sensing face) is aligned with the center of the quadcell. The detection sensor may be positioned at the center of the quadcell or may be positioned behind the quadcell (or on an opposing side than the inlet/outlet aperture of the terminal). Exemplary embodiments may also reposition the detection sensor and use other optical components to direct the beam to the detection sensor, such as an optical fiber. In which case, the terminal end of the optical fiber can be positioned in place of the detection sensor as described herein.
  • FIG. 7B illustrates an exemplary configuration similar to FIG. 3 with the inclusive of an internal baffle to isolate transmitted light from the alignment sensor for an FSO node having a common transmit/receive aperture. Especially if the transmit and receive beams use the same or similar wavelengths, then the alignment sensor may detect backscatter from the transmitted wave and cause the system to realign based on auxiliary backscatter light instead of that received from the opposing FSO node. Accordingly, an internal baffle cone could serve to provide isolation between the transmit and receive beams if a similar wavelength is used. As shown, a baffle 17 in incorporated in the optical path to separate the received light 18 into two portions: the detected portion 18 b and the alignment portion 18 a. The detected light 18 b is focused onto a terminal end of an optical fiber 12 a configured to receive light and direct the light to a detection sensor, and transmit light originating from a light source. The alignment light portion is focused or directed onto the alignment sensor 14. When the transmitted beam is propagated from the optical fiber 12 a, the light is separated or isolated by the baffle 17 and does prevented from entering the alignment portion 18 a.
  • For a bi-directional link between two FSO nodes, exemplary embodiments may be used such that the incoming data beam can also be used for tracking. In an exemplary embodiment, an exemplary free space optical node may include any combination of:
  • a common objective lens for transmit (Tx) and receive (Rx);
    an annular area around the Tx is captured by the quadcell with a hole for guiding; for a uni-directional link, the quadcell can be chosen to match the wavelength of the guide beacon, or use nearly the same wavelength as the Tx.
    for a bidirectional link, the Tx and Rx can be separated with a beam splitter or optical circulator;
    for use with a Tx/Rx fiber, the quadcell and Tx/Rx fiber could be integrated into a structure that eliminates the need for beamsplitters, simplifying the mechanical design; and/or an internal baffle cone could serve to provide isolation between Tx and Rx if a similar wavelength is used.
  • The above features are exemplary only, and may be used in any combination or sub-combination as is desired for the application. Other features may be added or the above features may also be modified to achieve the objective of a user. For example, ranges, such as for wavelengths, may be redefined for particular applications, distances, environments, etc. Also, features may be removed and others redefined to accommodate the removal of a feature, such as the added or removed baffle cone of exemplary FIG. 7B above.
  • Exemplary embodiments may be used to align and use (send/receive signals) the terminal while reducing system complexity. Exemplary embodiments use an increased lens size and use the light with a higher numerical aperture (NA) on a wave front sensor (WFS), such as a quadcell with a hole. An annular ring from this section of the objective will be seen on the quadcell. The inside annulus comes from the hole in the quad while the outside comes from the edges of the objective. Any angular change moves this outside edge shifting the balance of light on the quadrants.
  • Part of the tuning parameters of the system include the position of the optics, such as the sensors and/or optical fibers (see, e.g. FIG. 7A). For example, a position of the alignment wave front sensor inside a focal plane of the corresponding light on the detection sensor changes the hole size, and also allows changing the field of view (FOV) and linear region over which it works. In practice, linearity only really matters when the beam is centered and the link is in operation. During acquisition with large angle errors, knowing the sign is enough to steer towards the center.
  • In an exemplary embodiment, the detection sensor and alignment sensor may be along an optical path, but used with different optical beams. Specifically, if the two sensors detect different wavelengths and transparent to the wavelength of the other sensor, then the backscatter or other interference between the sensors is reduced or eliminated. However, two light sources are necessary at the sending node to be received. For example, if an FSO system is using 1550 nm wavelength light for transmitting data (the detection sensor), a silicon quadcell could be used as an alignment sensor as it is transparent at the data wavelength. In this embodiment, a guide beacon would be chosen for Silicon and the data transmitted on 1550 nm. Therefore, an extremely high isolation can be achieved without the baffle cone.
  • FIG. 8A illustrates an exemplary light alignment on an exemplary quadcell as the beam is positioned. The receive beam is seen on the quadcell. The upper quadrants detect more light and therefore, the terminal can be moved upwards, or the transmitting beam (other terminal) moved downwards. The beam can be aligned such that it is centered on the quadcell and therefor on the centered optical fiber within the aperture of the quadcell. A representative transfer function is illustrated in FIG. 9. This one is notional for a particular application, but shows the basic behavior.
  • Exemplary embodiments described herein include using a free space optical terminal in which a portion of the received beam is used for aligning the system and a separate portion of the beam is used for receiving, transmitting, and any combination thereof for a data signal. The exemplary method can be used without a beam splitter that separates the beam into separate paths. In an exemplary embodiment, the first portion of the beam used for alignment is an exterior portion circumscribing the second portion used for transmitting and/or receiving the data signal. Therefore, the first portion may be a central portion, while the second portion may be a circumferential exterior portion of the same beam. Exemplary embodiments may also capture the entire beam for communication by positioning the detection sensor before the alignment sensor and focusing the light on the detection sensor. In exemplary embodiments, a controller is coupled to one or more optical components to adjust or control the position of the components and are able to position, aligned, or alter the working components of the system.
  • The method may include receiving an optical beam at the FSO terminal. The method includes positioning the beam such that a first portion falls on one or more detector(s) for aligning the terminal with the received beam (or any first system function), and a second portion falls on one or more receiver(s), such as a fiber optic or detection sensor, for detecting and/or directing the signal for analyzing a data signal carried on the received light. The system is configured such that the detector(s) circumferentially surround the receiver(s).
  • As shown and described, a quadcell is used to illustrate the plurality of detectors around the optical fiber or detection sensor. However, it should be understood that any combination of detectors may be positioned around the common receive/transmit path. The detectors may be of the same kind, or may be different. There are variants for the tilt sensor choice and a quadcell is not exclusive. Anything from normal quads to custom multi pixel detectors including focal plane arrays with random sub array read out may be used. Exemplary embodiments permit the light to pass through a hole, aperture, or space between detectors, or have a material that transmits the light used for data transmission.
  • As shown and described, the receiver for receiving and transmitting the light for data transmission is shown and described interior the detectors for alignment or other system function, such that the detectors circumferentially surround the receiver. However, these functions and/or components may be switched and is not limited to the exemplary embodiment described.
  • “Substantially fill” or “substantial” is intended to mean greater than a majority, such as more than 75%. A majority is intended to mean 50%. Numerical ranges are also used herein and are approximations only. Approximations are understood to be within the person of skill in the art. For example, when a series of detectors approximately fully surround or circumscribe an optical fiber, it is understood that natural dead space or gaps must accompany the areas between the detectors. These approximations are within the skill of the art to determine and may depend on system components, tolerances, wavelengths, system size, etc. Therefore, approximately fully surround is understood to have detectors positioned around the detectors to minimize the dead space, but would be dependent upon the kind and quantity of detectors selected. An optical beam path is understood to be the linear longitudinal direction of a propagated beam.
  • Exemplary embodiments may be incorporated into a free space optical terminal used for both transmitting and receiving data signals. In an exemplary embodiment, the FSO terminal may use common optics for transmitting and receiving a data signal therefrom/thereto. For example, U.S. application Ser. No. 14/608,166, titled “Data Retransmission for Atmospheric Free Space Optical Communication System,” owned by the present applicant, and incorporated by reference in its entirety herein, discloses an FSO unit that may use a common aperture and optics for transmitting and receiving a data signal. Exemplary embodiments described herein may be used in conjunction with or replace the components for alignment and detecting. For example, the components labeled 20, 22, and 24 of FIG. 2 of the Data Retransmission application may be replaced by embodiments described herein. Other exemplary systems that may inform alternative configurations of the instant invention include, but are not limited to those disclosed by U.S. application Ser. No. 14/608,133, filed Jan. 28, 2015, titled “Free Space Optical Communication Tracking with Electronic Boresight Compensation . . . ”, U.S. Provisional Application No. 62/238,637, filed Oct. 7, 2015, titled “Fast Tracking Free Space Optical Module,” and U.S. Provisional Application 62/266,710, filed Dec. 14, 2015, titled “Free Space Optical System with Common Transmit and Receive Paths,” both filed concurrently herewith, and incorporated in their entirety herein.
  • Although embodiments of this invention have been fully described with reference to the accompanying drawings, it is to be noted that various changes and modifications will become apparent to those skilled in the art. Such changes and modifications are to be understood as being included within the scope of embodiments of this invention as defined by the appended claims.

Claims (14)

The invention claimed is:
1. A free space optical terminal, comprising:
a wave front sensor comprising a free space in an interior region of the wave front sensor;
a receiver concentric with the free space of the wave front sensor.
2. The free space optical terminal of claim 1, wherein the receiver comprises an optical fiber.
3. The free space optical terminal of claim 2, wherein the optical fiber is a bi-directional fiber.
4. The free space optical terminal of claim 2, wherein the optical fiber is a uni-directional fiber.
5. The free space optical terminal of claim 1, wherein the wave front sensor is a plurality of sensors circumscribing a perimeter of the receiver as seen from a front view normal to a receiving surface of the receiver.
6. The free space optical terminal of claim 5, wherein the plurality of sensors substantially completes a perimeter around the receiver as seen from the front view.
7. The free space optical terminal of claim 6, wherein the plurality of sensors approximately completely completes the perimeter around the receiver as seen from the front view.
8. The free space optical terminal of claim 5, wherein a terminal surface of the optical fiber is positioned in plane with a working surface of the plurality of sensors as oriented with respect to an incoming received beam.
9. The free space optical terminal of claim 5, wherein the plurality of sensors comprises a quadcell.
10. The free space optical terminal of claim 9, wherein the free space is defined by a hole in the center of the quadcell.
11. A free space optical (FSO) terminal, comprising: a wave front sensor used for aligning the system and a detector used to receive a data transmission received on an optical beam, wherein the wave front sensor and the detector are different optical components, the system being configured such that a first portion of the received light is received at the wave front sensor and a second portion of the received light source is received at the detector, where a beam splitter is not used to separate the first portion from the second portion.
12. The free space optical terminal of claim 11, wherein the FSO terminal is configured to transmit and receive with common optics.
13. The free space optical terminal of claim 11, wherein the first portion and second portion follow the same optical beam path along an entire length within the system.
14. The free space optical terminal of claim 12, wherein the first portion circumscribes the second portion.
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Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2019055056A1 (en) * 2017-09-14 2019-03-21 Facebook, Inc. Compact system for active co-boresight measurement in a laser communication system
US10371508B1 (en) * 2018-04-04 2019-08-06 X Development Llc Method for alignment of phase-sensitive tracking systems using variable delay offsets
US10411797B1 (en) 2018-06-08 2019-09-10 SA Photonics, Inc. Free space optical node with fiber bundle
US10476591B2 (en) * 2016-06-13 2019-11-12 Bae Systems Plc Free space optical communication system receiver
US10841007B1 (en) * 2019-12-19 2020-11-17 Bae Systems Information And Electronic Systems Integration Inc. Full duplex laser communication terminal architecture without dedicated beacon laser
US11002956B1 (en) 2020-11-19 2021-05-11 Bae Systems Information And Electronic Systems Integration Inc. Refractive laser communication beam director with dispersion compensation
US11009595B1 (en) 2020-11-13 2021-05-18 Bae Systems Information And Electronic Systems Integration Inc. Continuously variable optical beam splitter
US20220045753A1 (en) * 2020-08-04 2022-02-10 SA Photonics, Inc. Free Space Optical Communication Terminal with Dispersive Optical Component
CN114303328A (en) * 2020-06-19 2022-04-08 东洋电机株式会社 Space optical transmission device
US11543645B1 (en) 2020-03-19 2023-01-03 Meta Platforms, Inc. Optical beam expander with partial monolithic structure
US11546062B1 (en) 2020-04-22 2023-01-03 Meta Platforms, Inc. Wavelength-selectable free-space optical communication
US11579014B1 (en) * 2020-08-20 2023-02-14 Amazon Technologies, Inc. Optical detector system
US11689283B1 (en) 2020-03-30 2023-06-27 Meta Platforms, Inc. Free-space optical communication system using a backchannel for power optimization
US11909439B2 (en) 2021-04-23 2024-02-20 SA Photonics, Inc. Wavefront sensor with inner detector and outer detector

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11476933B1 (en) * 2020-09-24 2022-10-18 SA Photonics, Inc. Free space optical communication terminal with rotatable dispersive optical component

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6535314B1 (en) * 2000-01-13 2003-03-18 Trw Inc. Satellite optical communication beam acquisition techniques
US20040086282A1 (en) * 2002-10-17 2004-05-06 J. Elon Graves Combined wavefront sensor and data detector for a free space optical communications system with adaptive optics
US7551121B1 (en) * 2004-03-12 2009-06-23 Oceanit Laboratories, Inc. Multi-target-tracking optical sensor-array technology
US7809278B2 (en) * 2004-07-26 2010-10-05 Hewlett-Packard Development Company, L.P. Apparatus and method of providing separate control and data channels between arrays of light emitters and detectors for optical communication and alignment
US20120248347A1 (en) * 2011-04-01 2012-10-04 Stmicroelectronics S.R.I. Confocal optical detector, detector array, and manufacturing method thereof
US8525091B2 (en) * 2008-05-05 2013-09-03 California Institute Of Technology Wavefront imaging devices comprising a film with one or more structured two dimensional apertures and their applications in microscopy and photography
US8660312B2 (en) * 2009-01-21 2014-02-25 California Institute Of Technology Quantitative differential interference contrast (DIC) devices for computed depth sectioning
US20150188628A1 (en) * 2013-12-27 2015-07-02 Charles H. Chalfant, III Acquisition, Tracking, and Pointing Apparatus for Free Space Optical Communications with Moving Focal Plane Array

Family Cites Families (46)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2183302A5 (en) 1972-03-02 1973-12-14 France Etat
US4518854A (en) 1982-06-17 1985-05-21 Itek Corporation Combined shearing interferometer and Hartmann wavefront sensor
US4635299A (en) 1985-06-11 1987-01-06 United States Of America As Represented By The Secretary Of The Air Force Discrete phase conjugate technique for precompensation of laser beams transmitted through turbulence
JPH06117924A (en) * 1992-08-19 1994-04-28 Nippondenso Co Ltd Optical position detector
JPH0820510B2 (en) 1993-01-19 1996-03-04 株式会社エイ・ティ・アール光電波通信研究所 Optical communication system Optical system alignment adjustment system
US5477550A (en) 1993-03-08 1995-12-19 Crisler; Kenneth J. Method for communicating data using a modified SR-ARQ protocol
US5701132A (en) 1996-03-29 1997-12-23 University Of Washington Virtual retinal display with expanded exit pupil
EP0847149B1 (en) 1996-12-06 1999-05-19 Oerlikon Contraves AG Device and method for aligning an optical emitter and receiver beam in satellite connections
US6683850B1 (en) 1997-08-29 2004-01-27 Intel Corporation Method and apparatus for controlling the flow of data between servers
US6141128A (en) 1997-12-15 2000-10-31 Astroterra Corporation Buffered laser communication link
US6469815B1 (en) 1999-04-28 2002-10-22 Trw Inc. Inter-satellite optical link acquisition sensor
JP4549468B2 (en) 1999-12-28 2010-09-22 株式会社トプコン Lens meter
US7564866B2 (en) 2000-07-21 2009-07-21 Broadcom Corporation Methods and systems for digitally processing optical data signals
US6674974B1 (en) * 2000-07-28 2004-01-06 Terabeam Corporation Method and apparatus for tracking in an optical communications system
US6522437B2 (en) * 2001-02-15 2003-02-18 Harris Corporation Agile multi-beam free-space optical communication apparatus
US20020131121A1 (en) * 2001-03-13 2002-09-19 Muthu Jeganathan Transceiver, system, and method for free-space optical communication and tracking
US20020181055A1 (en) 2001-04-20 2002-12-05 Grant Christiansen System and method for embedding control information within an optical wireless link
US6721510B2 (en) * 2001-06-26 2004-04-13 Aoptix Technologies, Inc. Atmospheric optical data transmission system
US6804422B1 (en) * 2001-12-05 2004-10-12 Terabeam Corporation Integrated optic component for binocular FSO transceiver
US7557929B2 (en) * 2001-12-18 2009-07-07 Massachusetts Institute Of Technology Systems and methods for phase measurements
US7609388B2 (en) 2002-01-24 2009-10-27 Icos Vision Systems Nv Spatial wavefront analysis and 3D measurement
US6810175B1 (en) 2002-04-22 2004-10-26 Terabeam Corporation Off-axis mode scrambler
US6836320B2 (en) 2002-10-23 2004-12-28 Ae Systems Information And Electronic Systems Integration Inc. Method and apparatus for active boresight correction
WO2004113962A2 (en) * 2003-03-03 2004-12-29 Montana State University-Bozeman Miniature confocal optical device, system, and method
US6865034B1 (en) 2003-04-01 2005-03-08 Bae Systems Information And Electronic Systems Integration Inc. Method and apparatus for eliminating alignment error in an optical system
US7505695B2 (en) 2003-04-23 2009-03-17 Mitsubishi Denki Kabushiki Kaisha Optical receiver and optical transmission system
US7277644B2 (en) 2003-06-13 2007-10-02 The Regents Of The University Of California Fade-resistant forward error correction method for free-space optical communications systems
US7593641B2 (en) * 2003-11-10 2009-09-22 Harris Corporation System and method of free-space optical satellite communications
US7343099B2 (en) * 2004-02-12 2008-03-11 Metrologic Instruments, Inc. Free space optical (FSO) laser communication system employing fade mitigation measures based on laser beam speckle tracking and locking principles
GB0408122D0 (en) 2004-04-13 2004-05-19 Koninkl Philips Electronics Nv Improvements relating to reception in optical networks
WO2007044922A2 (en) 2005-10-13 2007-04-19 Raytheon Company Methods and apparatus for guidance systems
DE102006001424A1 (en) * 2006-01-10 2007-07-19 Deutsches Zentrum für Luft- und Raumfahrt e.V. Free-space data communication system, has sensor to execute pointing and tracking and acquisition methods, where communication is integrated in user-data stream and adjusts counteractive measures during appearance of performance fading
US7711441B2 (en) * 2007-05-03 2010-05-04 The Boeing Company Aiming feedback control for multiple energy beams
US20090213953A1 (en) 2008-02-25 2009-08-27 Legend Silicon Corp. Bit Log Likelihood Ratio (LLR) Computation of a 32-QAM System
WO2010005181A2 (en) 2008-06-16 2010-01-14 Lg Electronics Inc. Cooperative symbol level network coding in multi-channel wireless networks
WO2010071125A1 (en) 2008-12-17 2010-06-24 コニカミノルタオプト株式会社 Objective optical element and optical pickup device
US8260146B2 (en) * 2009-01-07 2012-09-04 Aoptix Technologies, Inc. Free-space optical transceiver using multimode fiber to couple single mode input optical signal
US9445400B2 (en) 2010-07-02 2016-09-13 Samsung Electronics Co., Ltd. Methods and devices for performing an automatic repeat request reset in a wireless communication environment
US8948612B2 (en) 2010-12-03 2015-02-03 Tyco Electronics Subsea Communications Llc System and method for generating soft decision reliability information from hard decisions in an optical signal receiver
US8539297B1 (en) 2011-02-01 2013-09-17 Sprint Communications Company L.P. Determining whether a wireless access node should retransmit data packets based on the condition of a reverse wireless link
US8942562B2 (en) * 2011-05-31 2015-01-27 A Optix Technologies, Inc. Integrated commercial communications network using radio frequency and free space optical data communication
EP2615749B1 (en) 2011-12-20 2017-12-06 Thales Alenia Space Schweiz AG Method for optical data transmission from low earth orbit to earth and corresponding communication system
US9094163B2 (en) 2012-08-28 2015-07-28 Aoptix Technologies, Inc. Assessment and correction of transmitted data
US9716549B2 (en) * 2014-01-28 2017-07-25 SA Photonics, Inc. Free space optical communication tracking with electronic boresight compensation and co-boresighted transmit and receive optics
WO2015116738A1 (en) 2014-01-28 2015-08-06 SA Photonics, Inc. Data retransmission for atmospheric free space optical communication system
CN108352895B (en) * 2015-08-21 2020-03-24 Sa光子学公司 Free Space Optical (FSO) system

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6535314B1 (en) * 2000-01-13 2003-03-18 Trw Inc. Satellite optical communication beam acquisition techniques
US20040086282A1 (en) * 2002-10-17 2004-05-06 J. Elon Graves Combined wavefront sensor and data detector for a free space optical communications system with adaptive optics
US7406263B2 (en) * 2002-10-17 2008-07-29 Aoptix Technologies Combined wavefront sensor and data detector for a free space optical communications system with adaptive optics
US7551121B1 (en) * 2004-03-12 2009-06-23 Oceanit Laboratories, Inc. Multi-target-tracking optical sensor-array technology
US7809278B2 (en) * 2004-07-26 2010-10-05 Hewlett-Packard Development Company, L.P. Apparatus and method of providing separate control and data channels between arrays of light emitters and detectors for optical communication and alignment
US8525091B2 (en) * 2008-05-05 2013-09-03 California Institute Of Technology Wavefront imaging devices comprising a film with one or more structured two dimensional apertures and their applications in microscopy and photography
US8660312B2 (en) * 2009-01-21 2014-02-25 California Institute Of Technology Quantitative differential interference contrast (DIC) devices for computed depth sectioning
US20120248347A1 (en) * 2011-04-01 2012-10-04 Stmicroelectronics S.R.I. Confocal optical detector, detector array, and manufacturing method thereof
US20150188628A1 (en) * 2013-12-27 2015-07-02 Charles H. Chalfant, III Acquisition, Tracking, and Pointing Apparatus for Free Space Optical Communications with Moving Focal Plane Array

Cited By (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10476591B2 (en) * 2016-06-13 2019-11-12 Bae Systems Plc Free space optical communication system receiver
US10439716B2 (en) 2017-09-14 2019-10-08 Facebook, Inc. Compact system for active co-boresight measurement in a laser communication system
WO2019055056A1 (en) * 2017-09-14 2019-03-21 Facebook, Inc. Compact system for active co-boresight measurement in a laser communication system
EP3759842A4 (en) * 2018-04-04 2021-12-15 X Development LLC Method for alignment of phase-sensitive tracking systems using variable delay offsets
WO2019195152A1 (en) 2018-04-04 2019-10-10 X Development Llc Method for alignment of phase-sensitive tracking systems using variable delay offsets
US10914579B2 (en) 2018-04-04 2021-02-09 X Development Llc Method for alignment of phase-sensitive tracking systems using variable delay offsets
US10371508B1 (en) * 2018-04-04 2019-08-06 X Development Llc Method for alignment of phase-sensitive tracking systems using variable delay offsets
US10411797B1 (en) 2018-06-08 2019-09-10 SA Photonics, Inc. Free space optical node with fiber bundle
US20190379454A1 (en) * 2018-06-08 2019-12-12 SA Photonics, Inc. Free space optical node with fiber bundle
US10903901B2 (en) 2018-06-08 2021-01-26 SA Photonics, Inc. Free space optical node with fiber bundle
US10841007B1 (en) * 2019-12-19 2020-11-17 Bae Systems Information And Electronic Systems Integration Inc. Full duplex laser communication terminal architecture without dedicated beacon laser
US11543645B1 (en) 2020-03-19 2023-01-03 Meta Platforms, Inc. Optical beam expander with partial monolithic structure
US11689283B1 (en) 2020-03-30 2023-06-27 Meta Platforms, Inc. Free-space optical communication system using a backchannel for power optimization
US11546062B1 (en) 2020-04-22 2023-01-03 Meta Platforms, Inc. Wavelength-selectable free-space optical communication
US11949449B2 (en) 2020-06-19 2024-04-02 Toyo Electric Corporation Spatial optical transmission apparatus
CN114303328A (en) * 2020-06-19 2022-04-08 东洋电机株式会社 Space optical transmission device
US11394461B2 (en) 2020-08-04 2022-07-19 SA Photonics, Inc. Free space optical communication terminal with actuator system and optical relay system
US11515941B2 (en) * 2020-08-04 2022-11-29 SA Photonics, Inc. Free space optical communication terminal with dispersive optical component
US20220045753A1 (en) * 2020-08-04 2022-02-10 SA Photonics, Inc. Free Space Optical Communication Terminal with Dispersive Optical Component
US11579014B1 (en) * 2020-08-20 2023-02-14 Amazon Technologies, Inc. Optical detector system
US11009595B1 (en) 2020-11-13 2021-05-18 Bae Systems Information And Electronic Systems Integration Inc. Continuously variable optical beam splitter
US11002956B1 (en) 2020-11-19 2021-05-11 Bae Systems Information And Electronic Systems Integration Inc. Refractive laser communication beam director with dispersion compensation
US11909439B2 (en) 2021-04-23 2024-02-20 SA Photonics, Inc. Wavefront sensor with inner detector and outer detector

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