Claims
- 1. A method to introduce variable time offsets into a stream of optical pulses, comprising:
receiving a plurality of optical pulses; receiving a plurality of control signals; forming a coherent pulse array (CPA) from each optical pulse in response to one of the control signals, temporal spacings between pulses of each CPA being responsive to the associated one of the received control signals; and transmitting each pulse through a dispersive optical medium, the transmitting making pulses of each CPA overlap to form an interference pattern.
- 2. The method of claim 1, wherein each act of forming a CPA from a pulse is responsive to the act of transmitting the same pulse.
- 3. The method of claim 1, wherein the transmitting includes sending the coherent pulse arrays through the dispersive optical medium.
- 4. The method of claim 1, further comprising sending each interference pattern through an intensity discriminator to pass a peak thereof.
- 5. The method of claim 4, wherein the act of sending transmits the highest intensity peak of each interference pattern.
- 6. The method of claim 4, wherein the act of forming further comprises:
splitting each received pulse into a plurality of pulses; and delaying at least one of the pulses of said plurality by propagating the one of the pulses and the associated one of the control signals in a nonlinear optical media.
- 7. The method of claim 6, further comprising:
eliminating the one of the control pulses from said nonlinear medium.
- 8. The method of claim 1, wherein the one of the pulses and the associated one of the control signals propagate in opposite directions in the nonlinear medium.
- 9. A variable temporal grating generator (TGG), comprising:
an amplitude splitter to split a received optical pulse into a plurality of pulses; a plurality of optical waveguides, each waveguide connected to receive one of the pulses from the splitter, at least one of the waveguides comprising a variable path element, the variable path element having a control terminal and an optical path length responsive to control signals received at the control terminal; and a waveguide coupler connected to receive pulses from the optical waveguides, the coupler having an output terminal to transmit CPA's made of the pulses received.
- 10. The variable TGG of claim 9, wherein the variable path element further comprises:
a nonlinear optical medium coupled to receive pulses traveling through the one of the waveguides; and wherein the signals received by the control terminal are optical signals and the control terminal is connected to transmit a portion of each optical signal to the nonlinear medium.
- 11. The variable TGG of claim 10, wherein the variable path element further comprises:
a filter to impede the control signals from propagating to the waveguide coupler.
- 12. The variable TGG of claim 9, further comprising:
an output optical waveguide coupled to receive the CPA's from the output terminal; and a high frequency signal generator coupled to send driving signals to a portion of the output optical waveguide, the driving signals to vary the index of refraction of the portion of the output optical waveguide.
- 13. The variable TGG of claim 12, wherein the signal generator is capable of producing electrical driving signals correlated to separate pulses of CPA's.
- 14. The variable TGG of claim 12, wherein the signal generator is capable of producing optical driving signals correlated to separate pulses of CPA's.
- 15. A variable optical delay line, comprising:
a length of dispersive medium having two ends; and a temporal grating generator (TGG) having an optical input terminal, an optical output terminal and a control terminal, one of the optical input terminal and the optical output terminal being coupled to one end of the dispersive medium, the TGG to generate a coherent pulse array (CPA) at the optical output terminal from each pulse received at the optical input terminal, temporal spacings of pulses of each CPA being responsive to signals received at the control terminal, and the dispersive medium to cause each CPA to produce an interference pattern.
- 16. The variable optical delay line of claim 15, wherein the dispersive media is a dispersive optical waveguide.
- 17. The variable optical delay line of claim 16, further comprising:
an optical clock to produce coherent optical clock pulses, the output terminal of the clock being connected to one of an end of the waveguide and the input terminal of the variable TGG.
- 18. The variable optical delay line of claim 17, wherein the output terminal of the optical clock is connected to one end of the dispersive waveguide.
- 19. The variable optical delay line of claim 17, further comprising:
an intensity discriminator connected to receive each interference pattern.
- 20. The variable optical delay line of claim 16, further comprising an intensity discriminator connected to receive each interference pattern.
- 21. The variable optical delay line of claim 20, wherein the intensity discriminator comprises a NOLM.
- 22. The variable optical delay line of claim 16, wherein the control terminal is capable of receiving an optical signal.
- 23. The variable optical delay line of claim 15, wherein the variable TGG further comprises:
an amplitude splitter to split an optical pulse received from the input terminal into a plurality of pulses; a plurality of optical waveguides, each waveguide connected to receive one of the pulses from the splitter, at least one of the waveguides comprising a variable path element, the variable path element coupling to the control terminal and an optical path length responsive to control signals received at the control terminal; and a waveguide coupler connected to receive pulses from the optical waveguides, the waveguide coupler having a second output terminal to transmit a portion of the pulses received.
- 24. The variable optical delay line of claim 23, wherein the variable path element further comprises:
a nonlinear optical medium coupled to receive pulses traveling through the one of the waveguides; and wherein the signals received by the control terminal are optical signals and the control terminal is connected to transmit a portion of each optical signal to the nonlinear medium.
- 25. The variable optical delay line of claim 24, wherein the variable path element further comprises:
a filter to impede the control signals from propagating to the waveguide coupler.
- 26. An optical phase locked loop, comprising:
an optical switch having first and second input terminals and an output terminal; an optical clock to produce clock pulses; a dispersive optical waveguide coupled to the optical clock; and a variable temporal grating generator (TGG) having a control terminal, being coupled to receive the clock pulses from the dispersive waveguide, and being coupled to transmit interference patterns to the second input terminal of the optical switch, the output terminal of the switch being coupled to the control terminal.
- 27. The optical phase locked loop of claim 26, wherein the output terminal of the switch is coupled to transmit optical signals to the control terminal.
- 28. The optical phase locked loop of claim 27, wherein the variable TGG comprises:
an amplitude splitter to split a received clock pulse into a plurality of pulses; a plurality of connecting optical waveguides, each connecting waveguide connected to receive one of the pulses from the splitter, at least one of the connecting waveguides comprising a variable path element, the variable path element having the control terminal and an optical path length responsive to the optical signals received at the control terminal; and a waveguide coupler connected to receive pulses from the connecting optical waveguides, the coupler having an output terminal to transmit CPA's made of the pulses received.
- 29. The optical phase locked loop of claim 28, wherein the variable path element further comprises:
a nonlinear optical medium coupled to receive clock pulses traveling in the one of the connecting waveguides; and wherein the control terminal is connected to transmit a portion of each optical control signal to the nonlinear medium.
- 30. The optical phase locked loop of claim 28, wherein the variable path element further comprises:
a filter to impede optical control signals from propagating to the waveguide coupler.
- 31. An antenna array, comprising:
a plurality of remote antennae; a control system to produce optical control signals; a plurality of first optical waveguides coupled to receive the optical control signals from the control system; a plurality of variable temporal grating generators (TGG), each TGG coupled to one of the first waveguides; and a plurality of second waveguides, each second waveguide connecting one of the TGG's to one of the remote antennae, each second waveguide capable of producing an interference pattern from a coherent pulse array (CPA) received from the connected TGG.
- 32. The antennae array of claim 31, wherein the control system couples to a control terminal of each variable TGG
- 33. The antennae array of claim 31, wherein the control system is capable of sending first and second signals to the control terminals of respective first and second ones of the TGG's, the first and second signals to produce CPA's with different pulse spacings.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/117,146, filed Jan. 25, 1999, and U.S. Provisional Application No. 60/126,730, filed Mar. 29, 1999.
Government Interests
[0002] The U.S. Government has non-exclusive rights in this invention pursuant to contract number AF19628-95-C-0002 awarded by DARPA.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60117146 |
Jan 1999 |
US |
|
60126730 |
Mar 1999 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09362349 |
Jul 1999 |
US |
Child |
10007455 |
Nov 2001 |
US |