IP Library Granted Patent US 7,480,319
Granted Patent B2
US 7,480,319 · App. 10/967,110 · Granted Jan 20, 2009

Optical switches and logic and methods of implementation

Assignee: California Institute of Technology
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Quick Facts
Patent No.
US 7,480,319
App. No.
10/967,110
Granted
Jan 20, 2009
Kind
B2
Abstract

Optical switches and logic devices comprising microstructure-doped nanocavity lasers are described. These switches and logic devices have gain and thus can be cascaded and integrated in a network or system such as for example on a chip. Exemplary switching elements switch the intensity, wavelength, or direction of the output. Exemplary logic devices include AND, OR, NAND, NOR, NOT, and XOR gates as well as flip-flops. Microfluidic sorting and delivery as well as optical tweezing and trapping may be employed to select and position a light emitter in a nanooptical cavity to form the nanolaser.

Claims (92)

1. An optical NOR gate comprising:

an optical OR gate comprising:

a first laser comprising a first optical cavity, a first gain region in said first optical cavity, and a first optical pump to pump said first gain region, said first optical cavity formed from reflector portions, said reflector portions comprising an array of microstructures disposed in an optically transmissive medium,

a plurality of input ports to said first optical cavity, and

an output port, said first laser outputting light through said output port upon introduction of an input signal into at least one of said plurality of input ports, wherein said first laser emits light when energy introduced into said first gain region exceeds a threshold level, and wherein (i) said threshold level of said first laser is larger than pump energy introduced by said first optical pump such that said first laser does not emit light without introduction of at least one of said input signals, each input signal having an energy level, and (ii) said threshold level is less than the sum of said pump energy and the energy of any one of said input signals such that the first laser emits light upon introduction of at least one of said input signals into said optical input ports; and

an optical NOT gate comprising:

a second laser comprising a second optical cavity, a second gain region in said second optical cavity, and a second optical pump to pump said second gain region, said second optical cavity formed from reflector portions, said reflector portions comprising an array of microstructures disposed in an optically transmissive medium,

an input port to said second optical cavity; and

an output port, said second laser outputting light through said output port of said NOT gate in the absence of an input signal at said input port of said NOT gate and said second laser ceasing to output light through said output port of said NOT gate when said input signal is introduced into said input port of said NOT gate,

wherein said output port of said optical OR gate is coupled to said input port of said optical NOT gate.

2. The optical switch of claim 1 , wherein said reflective portions comprising said microstructures comprise a photonic crystal.

3. The optical switch of claim 1 , wherein said first and second gain regions comprise a quantum dot or a quantum well structure.

4. The optical switch of claim 1 , wherein said first and second optical cavities support optical modes having mode volumes between about 0.01 and 1.0 cubic micrometers.

5. The optical switch of claim 1 , wherein said second pump introduces pump energy into said second gain region such that said second laser outputs light, and wherein said second optical cavity supports a first optical mode and has an effective refractive index that is altered upon introduction of an optical input signal through said input port into said second optical cavity such that said first optical mode is suppressed and said light output through said output port of said second laser is switched.

6. The optical switch of claim 5 , wherein said second optical cavity has a resonant frequency that is shifted by altering said effective refractive index upon introduction of said optical input signal such that said first optical mode is suppressed.

7. The optical switch of claim 5 , wherein said second optical cavity supports a second optical mode when said effective refractive index is altered upon introduction of said optical input signal such that said first optical mode is suppressed.

8. The optical switch of claim 1 , wherein said reflector portions of said first optical cavity substantially surround said first gain region in at least one plane that includes said first gain region.

9. An optical NOR gate comprising:

an optical OR gate comprising:

a first laser comprising a first optical cavity and a first gain region in said first optical cavity, said first optical cavity formed from reflector portions arranged on at least four sides of the first gain region, said reflector portions comprising an array of microstructures disposed in an optically transmissive medium,

a plurality of input ports to said first optical cavity, and

an output port, said first laser outputting light through said output port upon introduction of an input signal into at least one of said plurality of input ports, wherein said first laser emits light when energy introduced into said first gain region exceeds a threshold level, and wherein (i) said threshold level of said first laser is greater than the level of pump energy introduced into said first gain region by a pump energy source such that said first laser does not emit light without introduction of at least one of said input signals, each input signal having an energy level, and (ii) said threshold level is less than the sum of said pump energy and the energy of any one of said input signals such that the first laser emits light upon introduction of at least one of said input signals into said optical input ports; and

an optical NOT gate comprising:

a second laser comprising a second optical cavity and a second gain region in said second optical cavity, said second optical cavity formed from reflector portions arranged on at least four sides of the second gain region, said reflector portions comprising an array of microstructures disposed in an optically transmissive medium,

an input port to said second optical cavity; and

an output port, said second laser outputting light through said output port of said NOT gate in the absence of an input signal at said input port of said NOT gate and said second laser ceasing to output light through said output port of said

NOT gate when said input signal is introduced into said input port of said NOT gate,

wherein said output port of said optical OR gate is coupled to said input port of said optical NOT gate.

10. The optical switch of claim 9 , wherein said first and second gain regions comprise a quantum dot or a quantum well structure.

11. The optical switch of claim 9 , wherein said first and second optical cavities support optical modes having mode volumes between about 0.01 and 1.0 cubic micrometers.

12. The optical switch of claim 9 , wherein said second laser outputs light upon introduction of pump energy into said second gain region by the pump energy source, and wherein said second optical cavity supports a first optical mode and has an effective refractive index that is altered upon introduction of an optical input signal through said input port into said second optical cavity such that said first optical mode is suppressed and said light output through said output port of said second laser is switched.

13. The optical switch of claim 12 , wherein said second optical cavity has a resonant frequency that is shifted by altering said effective refractive index upon introduction of said optical input signal such that said first optical mode is suppressed.

14. The optical switch of claim 12 , wherein said second optical cavity supports a second optical mode when said effective refractive index is altered upon introduction of said optical input signal such that said first optical mode is suppressed.

15. The optical switch of claim 9 , wherein said reflector portions of said first optical cavity substantially surround said first gain region in at least one plane that includes said first gain region.

16. An optical NOR gate comprising:

an optical OR gate comprising:

a first laser comprising a first optical cavity, a first gain region in said first optical cavity, and a first optical pump to pump said first gain region, said first optical cavity formed from reflector portions, said reflector portions comprising an array of micro structures disposed in an optically transmissive medium,

a plurality of input ports to said first optical cavity, and

an output port, said first laser outputting light through said output port upon introduction of an input signal into at least one of said plurality of input ports; and

an optical NOT gate comprising:

a second laser comprising a second optical cavity, a second gain region in said second optical cavity, and a second optical pump to pump said second gain region, said second optical cavity formed from reflector portions, said reflector portions comprising an array of microstruetures disposed in an optically transmissive medium,

an input port to said second optical cavity; and

an output port, said second laser outputting light though said output port of said NOT gate in the absence of an input signal at said input port of said NOT gate and said second laser ceasing to output light through said output port of said NOT gate when said input signal is introduced into said input port of said NOT gate, wherein said second pump introduces pump energy into said second gain region such that said second laser outputs light, and wherein said second optical cavity supports a first optical mode and has an effective refractive index that is altered upon introduction of said optical input signal through said input port into said second optical cavity such that said first optical mode is suppressed and said light output through said output port of said second laser is switched,

wherein said output port of said optical OR gate is coupled to said input port of said optical NOT gate.

17. The optical switch of claim 16 , wherein said first and second gain regions comprise a quantum dot or a quantum well structure.

18. The optical switch of claim 16 , wherein said first and second optical cavities support optical modes having mode volumes between about 0.01 and 1.0 cubic micrometers.

19. The optical switch of claim 16 , wherein said first laser emits light when energy introduced into said first gain region exceeds a threshold level, and wherein (i) said threshold level of said first laser is larger than pump energy introduced by said first optical pump such that said first laser does not emit light without introduction of at least one of said input signals, each input signal having an energy level, and (ii) said threshold level is less than the sum of said pump energy and the energy of any one of said input signals such that the first laser emits light upon introduction of at least one of said input signals into said optical input ports.

20. The optical switch of claim 16 , wherein said second optical cavity has a resonant frequency that is shifted by altering said effective refractive index upon introduction of said optical input signal such that said first optical mode is suppressed.

21. The optical switch of claim 16 , wherein said second optical cavity supports a second optical mode when said effective refractive index is altered upon introduction of said optical input signal such that said first optical mode is suppressed.

22. The optical switch of claim 16 , wherein said reflector portions of said first optical cavity substantially surround said first gain region in at least one plane that includes said first gain region.

23. An optical NOR gate comprising:

an optical OR gate comprising:

a first laser comprising a first optical cavity, a first gain region in said first optical cavity, and a first optical pump to pump said first gain region, said first optical cavity formed from reflector portions, said reflector portions comprising an array of microstructures disposed in an optically transmissive medium,

a plurality of input ports to said first optical cavity, and

an output port, said first laser outputting light through said output port based on an input signal into at least one of said plurality of input ports, wherein said first laser has a first output state when energy introduced into said first gain region does not exceed a threshold level and has a second output state with optical output greater than in the first output state when energy introduced into said first gain region does exceed the threshold level, and wherein (i) said threshold level of said first laser is larger than pump energy introduced by said first optical pump such that said first laser is not placed in the second output state without introduction of at least one of said input signals, each input signal having an energy level, and (ii) said threshold level is less than the sum of said pump energy and the energy of any one of said input signals such that the first laser is placed in the second output state upon introduction of at least one of said input signals into said optical input ports; and

an optical NOT gate comprising:

a second laser comprising a second optical cavity, a second gain region in said second optical cavity, and a second optical pump to pump said second gain region, said second optical cavity formed from reflector portions, said reflector portions comprising an array of micro structures disposed in an optically transmissive medium,

an input port to said second optical cavity; and

an output port, said second laser having a first output state when an input signal at said input port of said NOT gate is at a first input level and said second laser having a second output state with optical output less than in the first output state when said input signal is at a second level that is higher than the first input level,

wherein said output port of said optical OR gate is coupled to said input port of said optical NOT gate.

24. The optical switch of claim 23 , wherein said reflective portions comprising said microstructures comprise a photonic crystal.

25. The optical switch of claim 23 , wherein said first and second gain regions comprise a quantum dot or a quantum well structure.

26. The optical switch of claim 23 , wherein said first and second optical cavities support optical modes having mode volumes between about 0.01 and 1.0 cubic micrometers.

27. The optical switch of claim 23 , wherein said second pump introduces pump energy into said second gain region such that said second laser is placed in the first output state, and wherein said second optical cavity supports a first optical mode and has an effective refractive index that is altered upon introduction of said optical input signal at said second input level through said input port into said second optical cavity such that said first optical mode is suppressed and said light output through said output port of said second laser is switched.

28. The optical switch of claim 23 , wherein said reflector portions of said first optical cavity substantially surround said first gain region in at least one plane that includes said first gain region.

29. An optical NOR gate comprising:

an optical OR gate comprising:

a first laser comprising a first optical cavity and a first gain region in said first optical cavity, said first optical cavity formed from reflector portions arranged on at least four sides of the first gain region, said reflector portions comprising an array of microstructures disposed in an optically transmissive medium,

a plurality of input ports to said first optical cavity, and

an output port, said first laser outputting light through said output port based on an input signal into at least one of said plurality of input ports, wherein said first laser has a first output state when energy introduced into said first gain region does not exceed a threshold level and has a second output state with optical output greater than in the first output state when energy introduced into said first gain region does exceed the threshold level, and wherein (i) said threshold level of said first laser is greater than the level of pump energy introduced into said first gain region by a pump energy source such that said first laser is not placed in the second output state without introduction of at least one of said input signals, each input signal having an energy level, and (ii) said threshold level is less than the sum of said pump energy and the energy of any one of said input signals such that the first laser is placed in the second output state upon introduction of at least one of said input signals into said optical input ports; and

an optical NOT gate comprising:

a second laser comprising a second optical cavity and a second gain region in said second optical cavity, said second optical cavity formed from reflector portions arranged on at least four sides of the second gain region, said reflector portions comprising an array of microstructures disposed in an optically transmissive medium,

an input port to said second optical cavity; and

an output port, said second laser having a first output state when an input signal at said input port of said NOT gate is at a first input level and said second laser having a second output state with optical power less than in the first output state when said input signal is at a second level that is higher than the first input level,

wherein said output port of said optical OR gate is coupled to said input port of said optical NOT gate.

30. The optical switch of claim 29 , wherein said first and second gain regions comprise a quantum dot or a quantum well structure.

31. The optical switch of claim 29 , wherein said first and second optical cavities support optical modes having mode volumes between about 0.01 and 1.0 cubic micrometers.

32. The optical switch of claim 29 , wherein said second laser is placed in the first output state upon introduction of pump energy into said second gain region by the pump energy source, and wherein said second optical cavity supports a first optical mode and has an effective refractive index that is altered upon introduction of said optical input signal at said second input level through said input port into said second optical cavity such that said first optical mode is suppressed and said light output through said output port of said second laser is switched.

33. The optical switch of claim 29 , wherein said reflector portions of said first optical cavity substantially surround said first gain region in at least one plane that includes said first gain region.

34. An optical NOR gate comprising:

an optical OR gate comprising:

a first laser comprising a first optical cavity, a first gain region in said first optical cavity, and a first optical pump to pump said first gain region, said first optical cavity formed from reflector portions, said reflector portions comprising an array of microstructures disposed in an optically transmissive medium,

a plurality of input ports to said first optical cavity, and

an output port, said first laser outputting light through said output port based on an input signal into at least one of said plurality of input ports; and an optical NOT gate comprising:

a second laser comprising a second optical cavity, a second gain region in said second optical cavity, and a second optical pump to pump said second gain region, said second optical cavity formed from reflector portions, said reflector portions comprising an array of microstructures disposed in an optically transmissive medium,

an input port to said second optical cavity; and

an output port, said second laser having a first output state when an input signal at said input port of said NOT gate is at a first input level and said second laser having a second output state with optical output less than in the first output state when said input signal is at a second level that is higher than the first level, wherein said second pump introduces pump energy into said second gain region such that said second laser is placed in the first output state, and wherein said second optical cavity supports a first optical mode and has an effective refractive index that is altered upon introduction of said optical input signal at said second input level through said input port into said second optical cavity such that said first optical mode is suppressed and said light output though said output port of said second laser is switched,

wherein said output port of said optical OR gate is coupled to said input port of said optical NOT gate.

35. The optical switch of claim 34 , wherein said first and second gain regions comprise a quantum dot or a quantum well structure.

36. The optical switch of claim 34 , wherein said first and second optical cavities support optical modes having mode volumes between about 0.01 and 1.0 cubic micrometers.

37. The optical switch of claim 34 , wherein said first laser has a first output state when energy introduced into said first gain region does not exceed a threshold level and has a second output state with optical output greater than in the first state when energy introduced into said first gain region does exceed the threshold level, and wherein (i) said threshold level of said first laser is larger than pump energy introduced by said first optical pump such that said first laser is not placed in the second output state without introduction of at least one of said input signals, each input signal having an energy level, and (ii) said threshold level is less than the sum of said pump energy and the energy of any one of said input signals such that the first laser is placed in the second output state upon introduction of at least one of said input signals into said optical input ports.

38. The optical switch of claim 34 , wherein said reflector portions of said first optical cavity substantially surround said first gain region in at least one plane that includes said first gain region.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2008
From: SCHERER, AXEL
To: CALIFORNIA INSTITUTE OF TECHNOLOGY
Reel/Frame 021738/0502 →
CONFIRMATORY LICENSE Recorded Dec 5, 2005
From: CALIFONRIA INSTITUTE OF TECHNOLOGY
To: AIR FORCE, UNITED STATES
Reel/Frame 017090/0317 →
Continuity (2)
Provisional Application 6051175300 · Oct 15, 2003
Related Publication 20050163419A1 · Jul 28, 2005