WO1997023799A1 - Apparatus for optical logic and switching functions - Google Patents
Apparatus for optical logic and switching functions Download PDFInfo
- Publication number
- WO1997023799A1 WO1997023799A1 PCT/US1996/020863 US9620863W WO9723799A1 WO 1997023799 A1 WO1997023799 A1 WO 1997023799A1 US 9620863 W US9620863 W US 9620863W WO 9723799 A1 WO9723799 A1 WO 9723799A1
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- WIPO (PCT)
- Prior art keywords
- pulse
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- power level
- coupler
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B26/00—Optical devices or arrangements for the control of light using movable or deformable optical elements
-
- G—PHYSICS
- G02—OPTICS
- G02F—OPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
- G02F3/00—Optical logic elements; Optical bistable devices
-
- G—PHYSICS
- G02—OPTICS
- G02F—OPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
- G02F1/00—Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
- G02F1/35—Non-linear optics
- G02F1/3511—Self-focusing or self-trapping of light; Light-induced birefringence; Induced optical Kerr-effect
- G02F1/3513—Soliton propagation
Definitions
- the present invention relates to optical devices in general and in particular to an improved method and apparatus for performing optical logic and switching functions.
- Optical logic and switching devices commonly include semiconductor components which are electrically biased to achieve proper processing of optical signals impinging on the semiconductor components. These electrooptical devices exhibit various disadvantages. Most significantly, electrooptical logic and switching devices have speed limitations associated with the RC time constant of the electrodes, and in addition experience energy losses as a result of the electrical to optical conversion process.
- U.S. Pat. No. 4,881 ,788 to Doran discloses an optical device wherein coupled signals are split and propagated along first and second optical fibers having equal lengths but different material properties. Signals propagating through the fibers arrive synchronously but phase shifted at a coupler connected at the terminal end of the fibers, and logic or switching operations are realized by detection of the phase shift.
- a pair of optical signals are propagated in a birinfringent fiber to induce soliton trapping between the signals, and logical operations are realized by detection of effects resulting from the trapping.
- the above designs suffer from numerous limitations including high switching power, environmental instability, and long latency time. There exists a need for a method and apparatus for providing all optical logic and switching functions which does not exhibit the disadvantages inherent in the prior art devices.
- the present invention is an optical device which utilizes intrapulse Raman scattering to provide a logic operation or switching function.
- Raman scattering When Raman scattering is stimulated in an optical fiber, a small fraction of the incident power from an optical beam is converted into another optical beam at a frequency downshifted by an amount determined by the vibrational modes of the medium.
- Intrapulse Raman scattering also known as soliton self-frequency shift, occurs within a single optical pulse whose optical spectrum is sufficiently broad for the lower wavelength components within the pulse to transfer energy to the high wavelength components.
- the intrapulse Raman effect Given the inverse relation between the pulse's temporal width and its optical spectrum and also the shape of the Raman gain spectrum, the intrapulse Raman effect is extremely sensitive to temporal width.
- soliton pulse width compression can be generated by adjusting the order number of the soliton (which varies depending on input power)
- the wavelength shift of a soliton pulse propagating in a fiber can be adjusted by adjusting the input power of the pulse.
- the input power For Raman scattering of soliton propagation in an optical fiber to build up exponentially, the input power must be above the Raman threshold, a quantity determined by the Raman gain, the effective core area of the fiber, and the effective length of the fiber.
- a plurality of pulses of the same central wavelength are coupled to produce an output pulse having a power level equal to the sum power level of the inputs.
- the output will experience a wavelength shift.
- a logic "0" in a return-to-zero (RZ) optical network is provided by the absence of a soliton, and a logic "1" is provided by the presence of a soliton.
- a logic "1 " is provided by a soliton having a power level of between about 0.5 and about 1.0 times the Raman threshold power level. Therefore, when one or no logic "1" pulses are input into a two input AND gate coupler, the output power level will be lower than the Raman threshold power level, and the wavelength of the output pulse will not be shifted. When two logic "1" input pulses are input into the AND gate coupler, the output power will be greater than the Raman threshold, and the output pulse will be shifted in wavelength.
- a logic gate according to the invention further includes a filter which passes or blocks coupler output pulses depending on the wavelength of the output pulse.
- the filter In a two input AND gate, the filter is selected to block output pulses having unshifted wavelengths, and pass pulses having shifted wavelengths. Therefore, the filter will pass an output pulse only when two logic "1" inputs are coupled to produce an output having a shifted wavelength.
- an optical pulse is made to switch to one or more output lines of a plurality of output lines depending upon the magnitude of a control pulse.
- An input pulse and a control pulse are input into an optical coupler which combines the pulses to produce an output representing the combined power levels of the input pulse and the control pulse.
- the output of the coupler will be shifted as a result of the Raman effect when the coupler output power level exceeds the Raman threshold for the output fiber.
- a control pulse having a power level of approximately zero will produce essentially no wavelength shift, while control pulses having power levels of above zero will produce wavelength shifts that increase in magnitude with increasing control pulse power level.
- a splitter is connected at the coupler output that presents the coupler output to each of several output lines.
- a wavelength-selective filter disposed at each output line passes or blocks the coupler output depending on the magnitude of the wavelength shift.
- each wavelength-selective filter will pass pulses representing wavelength shifts within a specific range and will block pulses having shifts outside of the specific range.
- the output line or lines on which to transmit the coupler output can be selected by adjusting the power level of the control pulse in accordance with the characteristics of the filter associated with the desired output line.
- Spectral broadening of a soliton during propagation can cause a wavelength-selective filter to pass a pulse which would have been blocked by a filter if not for the spectral broadening.
- devices of the present invention will normally require additional optical components for narrowing the width of an input pulse so that significant intrapulse Raman scattering can take effect, and for broadening the width of an output pulse so that the output pulse is of a width equal to a network's standard pulse width.
- Pulse narrowing can be accomplished by a number of different methods, including by chirped, photorefractive, fiber Bragg gratings and dispersion-tailored fiber. Both of these methods occur entirely in a length of fiber which is preferable. Fiber gratings are more compact (lengths of about 1- 10mm) but are reflective at the central design wavelength and therefore require additional components to extract the compressed pulse. Dispersion- decreasing fiber can adiabatically compress the soliton while maintaining its transform limited pulse shape. Conversely, dispersion-increasing fiber can adiabatically expand the soliton while maintaining its transform-limited shape. Chirped fiber gratings can also stretch pulses by launching the light in the opposite direction (in reverse).
- a major feature of the logic gate of the present invention is the combination of conditional intrapulse Raman scattering with a wavelength selective filter which detects if Raman scattering has been stimulated.
- the combination of these major elements provides an all-optical logic gate made entirely of passive components.
- a major feature of the switch according to the invention is the combination of controlled Intrapulse Raman scattering with an array of wavelength selective filters responsive to the magnitude of Raman scattering stimulated by the control input.
- the combination of these two major elements provides an all-optical switch made entirely of passive components.
- pulse narrowing optical component included at an input of a logic gate or switch.
- Including a pulse narrowing optical component which narrows a pulse width to a width on the order of 1ps enables Raman scattering to take effect in a logic gate or switch.
- Yet another feature common to both embodiments is the inclusion of a pulse broadening optical component at the output of a logic gate or switch.
- Inclusion of a pulse broadening optical component provides broadening of an output pulse so that the pulse has a width equivalent to that of a standard network pulse.
- Fig. 1 shows an embodiment of a logic gate according to the invention
- Fig. 2 shows an embodiment of a switch according to the invention
- Fig. 3 shows an alternative embodiment of a logic gate according to the invention
- Fig. 4 shows an alternative embodiment of a switch according to the invention.
- Fig. 5 is a graph illustrating dependency of Raman effect induced frequency shift on input pulse width
- Fig. 7 is a plot containing experimental data illustrating dependence of wavelength shift for a short width pulse on pulse input power
- Fig. 8 is a chart helpful in understanding the invention showing an input spectrum as compared to several possible coupler output spectrums.
- Intrapulse Raman scattering also known as soliton self-frequency shift, occurs within a single optical pulse whose optical spectrum is sufficiently broad for the lower wavelength components within the pulse to transfer energy to the high wavelength components. There is a continual downshift in frequency (red shift in wavelength) as the pulse propagates along the fiber. Given the inverse relation between the pulse's temporal width and its optical spectrum and also the shape of the Raman gain spectrum, the Intrapulse Raman effect is extremely sensitive to temporal width. Solitons (optical pulses with a hyperbolic pulse shape and the correct peak power to pulse relation propagating in silica fibers will be downshifted in frequency by an amount that depends on the fourth power of the pulse width. Solitons propagating in silica fibers that undergo Raman scattering experience a frequency shift of a magnitude that varies approximately according to:
- Equation 1 Equation 1 where L length of the fiber, and ⁇ T is the pulse width of an input pulse and dispersion is equal to 15ps/nm/km. This result is presented graphically in Fig.
- the width of a propagation pulse at a given point in a length of fiber can be narrowed by increasing the input power level.
- the amount of compression depends upon the initial peak power.
- An expression for the soliton compression factor as a function of soliton order number is given by:
- Fig. 7 illustrates experimental results of the wavelength v. input power this dependence for a
- the present invention utilizes this controllable Raman wavelength shift (which can be made to vary depending on the input power level) in providing a logic gate or switch.
- This controllable Raman wavelength shift (which can be made to vary depending on the input power level) in providing a logic gate or switch.
- Logic gate 10 includes fiber coupler 12 and a wavelength selective filter 14. Coupler 12 receives two or more input pulses, represented as 16 and 18 having predetermined power levels, and combines these pulses to produce an output pulse 20 having a magnitude approximately equal to the sum of the input pulses. Wavelength selective filter 14 selectively passes or blocks optical signals depending on the wavelength of the propagating signal.
- a coupler output pulse propagating though coupler output fiber 22 undergoes Stimulated Raman Scattering if the pulse has a sufficiently narrow pulse width and if the pulse has a power level above the Raman threshold. If Raman scattering of pulse 20 is stimulated, pulse 20 will experience a wavelength shift. Therefore, whether or not wavelength selective filter 14 passes a coupler output pulse 20 depends indirectly on the power level of the coupled output. Because filter 12 passes pulses depending indirectly on the power level of the coupler output, the filter output indicates information pertaining to the coupler input pattern of input pulses into coupler 16 and 18, which have predetermined power levels, and which determine the coupler output power level.
- Various logical operations of the device can be performed by coordinating the following: the power level of the inputs into coupler 16 and 18; the number of inputs into 16 and 18; the Raman threshold of the coupler output fiber; the output fiber length, 22; and the pass band of filter 14.
- filter 14 will block a coupler output pulse if the input pattern is desired to result in a "0" logical output, and will pass a coupler output pulse if the input pattern is desired to result in a "1" logical output.
- Logical operations that can be performed using a logic gate according to the present invention are best described by way of example. In a two input AND logic gate, the power levels of the inputs 16 and
- the Raman threshold of coupler output fiber 22, and the pass band of the wavelength selective filter 14 are coordinated so that a soliton pulse will be passed as a "I" Logic filter output only if a pair of soliton pulses (a pair of "1") inputs are presented to coupler 12.
- a two-input AND logic gate can be provided by coordinating the power level of the coupler inputs 16 and 18 and the Raman threshold of coupler output 20 so that Raman scattering of coupler output 20 is stimulated only if the coupler output has a power level corresponding to an input pattern wherein both inputs are "1 ".
- Such selective stimulation of Raman scattering is provided by selecting for the coupler inputs a "1" input power level of between about 0.5 and about 1.0 times the Raman threshold for the coupler output propagating on coupler output fiber 22.
- filter 14 In an AND gate, filter 14 generates a "1" logical output by passing pulses having shifted wavelengths, and blocking pulses having center wavelengths equal to the input wavelength.
- An AND logic operation could also be accomplished by providing an input power level above the Raman threshold so that Raman shifting occurs under a 0 1 , 1 0 input pattern as well as under a 1 1 input pattern, and a filter that passes a coupler output only if the coupler output has a shifted wavelength of the larger magnitude corresponding to the 1 1 input pattern.
- An AND gate according to the invention can easily be scaled up for additional inputs, as indicated by dashed inputs 26 and 28 of Fig. 1.
- An input AND gate can be provided by selecting an input power level of at least 1/m times the Raman threshold, where M is the number of inputs so that an input pattern having all "1" inputs results in a shifted wavelength which can be detected by filter 14.
- input power level is selected to be above the Raman threshold so that 0 1 and 1 0 input patterns stimulate a coupler output having a first wavelength shift magnitude and a 1 1 input pattern stimulates a coupler output having a second wavelength shift magnitude higher than the first.
- Selecting filter 14 to have a narrow pass band which passes pulses having wavelengths corresponding to 0 1 and 1 0 input patterns but which blocks pulses having wavelengths corresponding to a 1 1 input pattern provides an EXOR logical operation.
- an EXOR logic gate can be made by providing a pulse input power of between about 0.5 and about 1.0 times the Raman threshold for output fiber 22, and by selecting filter 14 so that filter 14 blocks pulses having shifted wavelengths, and passes pulses having unshifted wavelengths.
- Switch 30 includes a coupler 12, a splitter 32 and a plurality of output lines, for example, 34, 36, 38 and 40 each having a wavelength- selective filter 14 associated therewith, for selectively passing coupler output pulses depending on the wavelength of the pulse.
- Coupler 12 receives an input pulse having a predetermined power level, represented as 42, and a control pulse 44, and combines these pulses to generate a coupler output pulse 20 having a power level approximately equal to the sum of the input pulse power level and the power level of the control pulse.
- coupler output pulse 20 is of a sufficiently narrow width, and has a power level exceeding the Raman threshold for a pulse propagating in coupler output fiber 22, coupler output pulse 20 will be shifted in wavelength.
- each output line filter 34, 36, 38, 40 will have a different pass band (though a switch can be made wherein more than one filter can have the same pass band). Therefore, by controlling the amount of wavelength-shift experienced by coupler output 20, control pulse 44 controls through which filter, and therefore, to which output line (or lines) a coupler output pulse is passed.
- one filter 34 can be selected to have a pass band corresponding to the input wavelength, and each successive filter 36 and 38 can be selected to have pass bands of incrementally increasing wavelengths, each corresponding to a wavelength-shift resulting from an increment in the power level of control pulse 44.
- Equation 3 where A,,,, is the effective core area of the fiber, L eff is the effective length of the fiber, and g R is the Raman gain coefficient. It is seen therefore that the Raman threshold can be lowered by decreasing the effective core area of the fiber, increasing the effective length of the fiber, or by increasing the fiber's Raman gain coefficient.
- soliton optical network it is desirable to adjust the soliton power level to form average or guiding center solitons throughout the fiber links that do not stimulate Raman scattering.
- material properties of coupler output fiber 22 are controlled to selectively stimulate Raman scattering of coupler output pulse 20.
- M is the number of input ports.
- the input power level and Raman threshold must be coordinated so that a filter-detectable wavelength shift is generated when the coupler output exceeds the threshold.
- a filter-detectable wavelength shift is yielded, for example, where the spectral profile of a coupler output pulse does not interfere with (or overlap) the spectral profile of the input pulse.
- a spectral profile for a representative ⁇ 1 ps, ⁇ 1 W input pulse is indicated as spectrum 50.
- Output spectrum 52 has an undetectable wavelength shift with respect to input pulse 50 as the spectrum overlaps that of the input, while output spectrum 54 clearly can be distinguished from spectrum 50 by a wavelength selective filter.
- the input power level, the Raman threshold, and the operating wavelength of wavelength-selective filter 14 do not have to be precisely controlled since it is normally required that only one, and sometimes two discreet wavelength shifts are generated under the possible input conditions.
- a discreet filter-detectable wavelength shift is required for each output line 34, 36, 38, 40.
- coupler output power level is controlled so that generation of higher order (N ⁇ 2) solitons, and of lower order (N «1 ) solitons is avoided.
- the filters, 14, can either be designed to avoid cross-talk between the various output states or the output pulses can be re-expanded to provide re-narrowing of the output spectrum.
- the soliton order number, N, of a soliton as a function of pulse power is given by
- Equation 5 where P 0 is the peak power, K is a proportionality constant, Z 0 is the soliton period, N 2 is the nonlinear Kerr coefficient, and A, ff is the effective core area of the fiber.
- the coupler output must feature a range of power levels sufficient to generate a range of filter-detectable wavelength shifts.
- the range of power levels should be limited so that generation of lower and higher order solitons is avoided.
- Coupler output pulses having soliton order numbers outside of this range can be utilized in embodiments of the invention if such utilization does not interfere with the functioning of a wavelength-selective filter 14.
- output spectral profile 56 of Fig. 8 having an additional spectral peak 58 at the input wavelength can be utilized in gates and switches according to the invention as long as such gates and switches do not require a filter having a pass band at the input wavelength.
- Figs. 3 and 4 show alternative embodiments of a gate and switch, respectively, having additional components for providing improved performance.
- a dispersion decreasing fiber (DDF) 60 can be implemented (most conveniently as part of output fiber 22) for narrowing of pulses from a network pulse width to a width that enables significant Stimulated Raman Scattering and self-frequency shift of a pulse within a device according to the invention.
- Dispersion decreasing fibers have continuously or stepwise decreasing dispersions along their length and provide a narrowed output pulse having a temporal width, ⁇ ,(Z) determined according to:
- p is the pulse rate of dispersion change if the dispersion rate of change is also exponential and adiabatic.
- p must be less than zero.
- a gate or switch of the present invention may further include an optical component which broadens the output pulse width of a pulse propagating through a gate or switch so that the pulse is at its original input pulse width (which may be a standard network pulse width) when it exits a gate or switch.
- a pulse broadening component is best implemented before wavelength-selective filter 14, while in a switch embodiment of the invention, a pulse broadening optical component is best implemented before splitter 32.
- Pulse broadening is preferably accomplished with use of a dispersion increasing fiber (DIF) 62.
- DIF dispersion increasing fiber
- Dispersion increasing fibers have continuous or stewpwise increasing dispersions along their length and increase the temporal width, ⁇ T(Z), of a pulse propagating though the fiber according to:
- Pulse narrowing and broadening can also be accomplished with use of chirped, photorefractive, fiber Bragg gratings.
- Fiber gratings are more compact (lengths of about 1-1 Onm) but are reflective at the central design wavelength and therefore require additional components to extract the compressed pulse.
- Dispersion-tailored fiber can adiabatically compress or expand the soliton while maintaining its transform limited pulse shape.
- Chirped fiber gratings can also stretch a pulse by launching the light in the opposite direction (in reverse).
- a pulse broadening component in a coupler output fiber 22 of a gate or switch such that pulse broadening occurs after Raman scattering is stimulated can provide additional advantages. Namely, the detectability of a wavelength shift is increased. In general, when a pulse's temporal width is broadened, its spectral profile narrows. Thus, by broadening the width of coupler output pulse after Raman scattering is stimulated, the number of filter-detectable wavelengths that can be detected within a normal operating band (for example, the erbium amplifier gain band) can be increased. Therefore, spectral narrowing of a coupler output pulse is particularly useful in the case where a switch is provided having a plurality of output lines.
- Material properties of a DDF or DIF in an output fiber of a gate or switch can be controlled so that a desired Raman threshold is obtained, and suitable wavelength shifts are generated under select input conditions.
- devices of the invention include a separate length of fiber, designated as central fiber 64 for controlling the Raman threshold and wavelength shifting.
- Central fiber 64 of output fiber 22 of a gate or switch is optically connected at the output of a pulse compressing device 60 such that propagating pulses are not of sufficient pulse width for significant Raman scattering to take effect until the pulses reach central fiber 64. Thereby, substantially all Raman scattering of output pulse 20 in output fiber 22 takes place in central fiber 64.
- Central fiber 64 can be a dispersion-decreasing fiber designed to maintain the soliton pulse width if central fiber 64 is long enough that loss significantly broadens the pulse.
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- General Physics & Mathematics (AREA)
- Optics & Photonics (AREA)
- Nonlinear Science (AREA)
- Optical Modulation, Optical Deflection, Nonlinear Optics, Optical Demodulation, Optical Logic Elements (AREA)
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Abstract
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Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP96945439A EP0868675A4 (en) | 1995-12-22 | 1996-12-11 | Apparatus for optical logic and switching functions |
| JP09523885A JP2000505209A (en) | 1995-12-22 | 1996-12-11 | Device having optical logic and optical switch function |
| KR1019980704673A KR19990076592A (en) | 1995-12-22 | 1996-12-11 | Devices for Optical Logic and Switching Functions |
| AU15690/97A AU703382B2 (en) | 1995-12-22 | 1996-12-11 | Apparatus for optical logic and switching functions |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US08/577,136 US5600479A (en) | 1995-12-22 | 1995-12-22 | Method and apparatus for optical logic and switching functions |
| US08/577,136 | 1995-12-22 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO1997023799A1 true WO1997023799A1 (en) | 1997-07-03 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US1996/020863 Ceased WO1997023799A1 (en) | 1995-12-22 | 1996-12-11 | Apparatus for optical logic and switching functions |
Country Status (8)
| Country | Link |
|---|---|
| US (1) | US5600479A (en) |
| EP (1) | EP0868675A4 (en) |
| JP (1) | JP2000505209A (en) |
| KR (1) | KR19990076592A (en) |
| CN (1) | CN1079956C (en) |
| AU (1) | AU703382B2 (en) |
| CA (1) | CA2238487A1 (en) |
| WO (1) | WO1997023799A1 (en) |
Families Citing this family (14)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US5737460A (en) * | 1995-12-29 | 1998-04-07 | Lucent Technologies Inc. | Applications of solitons in transmission systems employing high launch powers |
| FR2759830B1 (en) * | 1997-02-18 | 1999-03-26 | Alsthom Cge Alcatel | OPTICAL REGENERATION FOR NON-SOLITON SIGNAL FIBER OPTIC TRANSMISSION SYSTEMS |
| CA2305144A1 (en) * | 1997-10-23 | 1999-04-29 | Alan F. Evans | Nonlinear optical loop mirror with adiabatic pulse compression |
| DE69800993T2 (en) * | 1998-03-26 | 2002-04-04 | Lucent Technologies Inc., Murray Hill | Method and device for controlling the optical power of a wavelength-multiplexed transmitted signal |
| JP3390755B2 (en) * | 1998-09-29 | 2003-03-31 | 科学技術振興事業団 | Wavelength tunable short pulse light generating apparatus and method |
| US6173096B1 (en) | 1999-04-19 | 2001-01-09 | Brian G. Bagley | Switching temporal optical solitons in a planar lightguide circuit |
| US6462865B1 (en) | 2001-06-29 | 2002-10-08 | Super Light Wave Corp. | All-optical logic with wired-OR multi-mode-interference combiners and semiconductor-optical-amplifier inverters |
| US6778728B2 (en) * | 2001-08-10 | 2004-08-17 | Corning Intellisense Corporation | Micro-electro-mechanical mirror devices having a high linear mirror fill factor |
| CN100454125C (en) * | 2002-06-11 | 2009-01-21 | 古河电气工业株式会社 | wave shaper |
| US6990281B2 (en) * | 2002-08-22 | 2006-01-24 | Prima Luci, Inc. | All optical logic gates |
| ITMI20041286A1 (en) * | 2004-06-24 | 2004-09-24 | Marconi Comm Spa | RECONFIGURABLE AND REGENERATIVE ULTRA-FAST OPTICAL LOGIC DOORS |
| US20070292131A1 (en) * | 2006-06-15 | 2007-12-20 | Volodymyr Slobodyanyuk | Methodes and processes of all-optical switching of optical data packets |
| US20090263079A1 (en) * | 2008-01-08 | 2009-10-22 | Yuval Shapira | Optical routers and logical gates based on the propagation of bragg solitons in non-uniform one-dimensional photonic crystals |
| CN105470797A (en) * | 2015-12-04 | 2016-04-06 | 重庆师范大学 | Light-operated photon logic gate |
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| US4703993A (en) * | 1984-12-19 | 1987-11-03 | American Telephone And Telegraph Company, At&T Bell Laboratories | Method and apparatus for making a device for optically interconnecting optical devices |
| US4764889A (en) * | 1984-12-19 | 1988-08-16 | American Telephone And Telegraph Company, At&T Bell Laboratories | Optical logic arrangement with self electro-optic effect devices |
| US4830444A (en) * | 1987-12-31 | 1989-05-16 | American Telephone And Telegraph Company, At&T Bell Laboratories | Optical switch |
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| CA1298113C (en) * | 1986-10-20 | 1992-03-31 | Nicholas John Doran | Optical device |
| JPH0834611B2 (en) * | 1989-01-27 | 1996-03-29 | 日本電気株式会社 | Wavelength division optical switching system |
| US4932739A (en) * | 1989-09-25 | 1990-06-12 | At&T Bell Laboratories | Ultra-fast optical logic devices |
| US5020050A (en) * | 1989-10-13 | 1991-05-28 | At&T Bell Laboratories | Cascadable optical combinatorial logic gates |
| FR2665039B1 (en) * | 1990-07-17 | 1994-03-25 | France Telecom | OPTICAL SWITCHING SYSTEM FOR MULTIPLEX FREQUENCY SIGNALS. |
| US5224194A (en) * | 1991-04-02 | 1993-06-29 | At&T Bell Laboratories | All-optical timing restoration |
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1995
- 1995-12-22 US US08/577,136 patent/US5600479A/en not_active Expired - Fee Related
-
1996
- 1996-12-11 CA CA002238487A patent/CA2238487A1/en not_active Abandoned
- 1996-12-11 JP JP09523885A patent/JP2000505209A/en active Pending
- 1996-12-11 KR KR1019980704673A patent/KR19990076592A/en not_active Withdrawn
- 1996-12-11 AU AU15690/97A patent/AU703382B2/en not_active Ceased
- 1996-12-11 EP EP96945439A patent/EP0868675A4/en not_active Withdrawn
- 1996-12-11 CN CN96199173A patent/CN1079956C/en not_active Expired - Fee Related
- 1996-12-11 WO PCT/US1996/020863 patent/WO1997023799A1/en not_active Ceased
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| US4703993A (en) * | 1984-12-19 | 1987-11-03 | American Telephone And Telegraph Company, At&T Bell Laboratories | Method and apparatus for making a device for optically interconnecting optical devices |
| US4764889A (en) * | 1984-12-19 | 1988-08-16 | American Telephone And Telegraph Company, At&T Bell Laboratories | Optical logic arrangement with self electro-optic effect devices |
| US4830444A (en) * | 1987-12-31 | 1989-05-16 | American Telephone And Telegraph Company, At&T Bell Laboratories | Optical switch |
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Also Published As
| Publication number | Publication date |
|---|---|
| CN1079956C (en) | 2002-02-27 |
| JP2000505209A (en) | 2000-04-25 |
| KR19990076592A (en) | 1999-10-15 |
| US5600479A (en) | 1997-02-04 |
| EP0868675A1 (en) | 1998-10-07 |
| CA2238487A1 (en) | 1997-07-03 |
| CN1205779A (en) | 1999-01-20 |
| AU1569097A (en) | 1997-07-17 |
| EP0868675A4 (en) | 2000-06-07 |
| AU703382B2 (en) | 1999-03-25 |
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