Claims
- 1. An optical communication element, comprising:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity; wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state at a rate associated with an average size of a packet traversing the communication element.
- 2. The optical communication element of claim 1, wherein the moveable mirror assembly comprises:
an inner strip spaced apart from the fixed layer by a first distance; and an outer strip disposed approximately adjacent to the inner strip and spaced apart from the fixed layer by a second distance which is greater than the first distance.
- 3. The optical communication element of claim 1, wherein the fixed layer comprises a fixed mirror layer and wherein the optical cavity comprises a Fabry-Perot cavity.
- 4. The optical communication element of claim 1, wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state at a rate optimized for a specified packet size.
- 5. The optical communication element of claim 1, wherein the rate is faster than once every 10 microseconds.
- 6. The optical communication element of claim 1, wherein the rate is faster than once every 30 microseconds.
- 7. The optical communication element of claim 1, wherein the average packet size comprises between 40 and 60 bytes and wherein the rate comprises between once each 300 nanoseconds and once each 100 nanoseconds.
- 8. The optical communication element of claim 1, wherein the switch between a substantially transmissive state and a less than substantially transmissive state provides a binary optical switching function.
- 9. The optical communication element of claim 1, wherein the switch between a substantially transmissive state and a less than substantially transmissive state provides a variable optical attenuator function.
- 10. The optical communication element of claim 1, wherein the optical communication element operates to substantially reflect an optical signal received when no voltage is applied and to substantially transmit the optical signal received when the voltage is applied.
- 11. The optical communication element of claim 1, wherein the optical communication element operates to substantially transmit an optical signal received when no voltage is applied and to substantially reflect the optical signal received when the voltage is applied.
- 12. A method of communicating optical signals, comprising:
receiving an optical signal at an optical communication element having a fixed layer and a unitary moveable mirror assembly disposed outwardly from the fixed layer; and applying a voltage to the optical communication element to change the position of the moveable mirror assembly relative to the fixed layer and cause a change in an optical characteristic of the optical communication element; wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state at a rate associated with an average size of a packet traversing the communication element.
- 13. The method of claim 12, wherein the unitary movable mirror assembly comprises:
an inner strip spaced apart from the fixed layer by a first distance; and an outer strip disposed approximately adjacent to the inner strip and spaced apart from the fixed layer by a second distance which is greater than the first distance.
- 14. The method of claim 12, wherein the fixed layer comprises a fixed mirror layer, which defines with the moveable mirror assembly a Fabry-Perot interference cavity.
- 15. The method of claim 12, wherein the optical communication element operates to substantially reflect an optical signal received when no voltage is applied and to substantially transmit the optical signal received when the voltage is applied.
- 16. The method of claim 12, wherein the optical communication element operates to substantially transmit an optical signal received when no voltage is applied and to substantially reflect the optical signal received when the voltage is applied.
- 17. An optical communication element, comprising:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity; wherein the optical communication element is operable to change between a substantially reflective state and a less than substantially reflective state at a rate associated with an average size of a packet traversing the communication element.
- 18. The optical communication element of claim 17, wherein the unitary moveable mirror assembly comprises:
an inner strip spaced apart from the fixed layer by a first distance; and an outer strip disposed approximately adjacent to the inner strip and spaced apart from the fixed layer by a second distance which is greater than the first distance.
- 19. An optical communication element, comprising:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity; wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state in response to the applied voltage.
- 20. The optical communication element of claim 19, wherein the moveable mirror assembly comprises:
an inner strip spaced apart from the fixed layer by a first distance; and an outer strip disposed approximately adjacent to the inner strip and spaced apart from the fixed layer by a second distance which is greater than the first distance.
- 21. The optical communication element of claim 19, wherein the switch between a substantially transmissive state and a less than substantially transmissive state provides a binary optical switching function.
- 22. The optical communication element of claim 19, wherein the switch between a substantially transmissive state and a less than substantially transmissive state provides a variable optical attenuator function.
- 23. The optical communication element of claim 19, wherein the optical communication element operates to substantially reflect an optical signal received when no voltage is applied and to substantially transmit the optical signal received when the voltage is applied.
- 24. The optical communication element of claim 19, wherein the optical communication element operates to substantially transmit an optical signal received when no voltage is applied and to substantially reflect the optical signal received when the voltage is applied.
- 25. An optical communication element, comprising:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity; wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state in less than 30 microseconds.
- 26. The optical communications element of claim 25, wherein the unitary moveable mirror assembly comprises:
an inner strip spaced apart from the fixed layer by a first distance; and an outer strip disposed approximately adjacent to the inner strip and spaced apart from the fixed layer by a second distance which is greater than the first distance.
- 27. The optical communication element of claim 25, wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state at a rate optimized for a specified packet size.
- 28. The optical communication element of claim 25, wherein the optical communication element operates to substantially reflect an optical signal received when no voltage is applied and to substantially transmit the optical signal received when the voltage is applied.
- 29. The optical communication element of claim 25, wherein the optical communication element operates to substantially transmit an optical signal received when no voltage is applied and to substantially reflect the optical signal received when the voltage is applied.
- 30. An optical communication element, comprising:
a first layer disposed outwardly from a substrate; and a unitary mirror assembly disposed outwardly from the first layer and forming with the first layer an optical cavity having an effective depth; the optical communication element operable to change the effective depth of the optical cavity in response to receiving a control signal, wherein the change in the effective depth of the optical cavity facilitates changing an optical characteristic of the communication element between a substantially transmissive state and a less than substantially transmissive state at a rate associated with an average size of a packet traversing the communication element.
- 31. The optical communication element of claim 30, wherein the unitary moveable mirror assembly comprises:
an inner strip spaced apart from the fixed layer by a first distance; and an outer strip disposed approximately adjacent to the inner strip and spaced apart from the fixed layer by a second distance which is greater than the first distance.
- 32. The optical communication element of claim 30, wherein the control signal comprises a voltage.
- 33. The optical communication element of claim 30, wherein the control signal comprises a change in temperature.
- 34. The optical communication element of claim 30, wherein the fixed layer comprises a fixed mirror layer and wherein the optical cavity comprises a Fabry-Perot cavity.
- 35. The optical communication element of claim 30, wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state in less than 30 microseconds.
- 36. The optical communication element of claim 30, wherein the switch between a substantially transmissive state and a less than substantially transmissive state provides a binary optical switching function.
- 37. The optical communication element of claim 30, wherein the switch between a substantially transmissive state and a less than substantially transmissive state provides a variable optical attenuator function.
- 38. The optical communication element of claim 30, wherein the optical communication element operates to substantially reflect an optical signal received when no voltage is applied and to substantially transmit the optical signal received when the voltage is applied.
- 39. The optical communication element of claim 30, wherein the optical communication element operates to substantially transmit an optical signal received when no voltage is applied and to substantially reflect the optical signal received when the voltage is applied.
- 40. An optical communication element, comprising:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity; wherein the optical communication element is relatively polarization insensitive when changing between a substantially transmissive state and a less than substantially transmissive state.
- 41. The optical communication element of claim 40, wherein the unitary moveable mirror assembly comprises:
an inner strip spaced apart from the fixed layer by a first distance; and an outer strip disposed approximately adjacent to the inner strip and spaced apart from the fixed layer by a second distance which is greater than the first distance.
- 42. The optical communication element of claim 40, wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state at a rate optimized for a specified packet size.
- 43. An optical communication device comprising:
a pair of collimating lens each having a central axis and each coupled to a fiber so that the axis of each collimating lens is at least partially offset from the axis of the fiber; and an optical communication element disposed between the collimating lenses approximately along the central axis of the fiber and spaced from each of the lenses by approximately a focal length of the respective lens, wherein the optical communication element is operable to receive optical signals from one collimating lens and to either transmits those signals to the other collimating lens or to reflect those signals depending on the position of a moveable mirror assembly relative to a fixed layer within the communication element; wherein the optical communication element comprises:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity.
- 44. An optical communication device comprising:
a first optical element operable to receive an optical signal; and a second optical element operable to receive an optical signal, the second optical element coupled to the first optical element over a first mode, the first and second optical elements coupled to a single mode fiber wherein the first mode at least partially overlaps the mode of the single mode fiber so that optical signals from the first and second optical elements couple to the fiber only when the first and second optical elements are substantially in phase with one another; wherein at least one of the first and second optical communication elements comprises:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity.
- 45. An optical communication device comprising:
an input operable to receive an optical signal; a first receiver coupled to a first output; a second receiver coupled to a second output; and an optical communication element coupled between the input and the first and second outputs, the optical communication element comprising:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity; wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state in response to the applied voltage.
- 46. The optical communication device of claim 45, wherein the optical communication element receives the input signal at a non-normal angle of incidence.
- 47. An optical communication device comprising:
a circulator operable to receive an input optical signal; a first receiver coupled to a first output of the circulator; a second receiver coupled to a second output of the circulator; and an optical switching element coupled between the circulator and the second receiver, the optical switching element operable to selectively communicate the optical signal for receipt by the first or second receiver depending on an application of a control signal to the switching element; wherein the optical switching element comprises:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity.
- 48. An optical processing device comprising:
a demultiplexer operable to receive a multiple wavelength input optical signal and to separate the multiple wavelength signal into a plurality of wavelength signals; and an array of optical communication elements operable to receive at least some of the plurality of wavelength signals and to provide an optical processing function to the received wavelength signal, at least one of the optical communication elements comprising:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity; wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state in response to the applied voltage.
- 49. The optical processing device of claim 48, further comprising a multiplexer operable to receive the at least some of the plurality of wavelength signals from the array and to combine those signals into an multiple wavelength output optical signal.
- 50. The optical processing device of claim 48, wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state at a rate associated with an average size of a packet traversing the communication element.
- 51. The optical processing device of claim 48, wherein the fixed layer comprises a fixed mirror layer and wherein the optical cavity comprises a Fabry-Perot cavity.
- 52. The optical processing device of claim 48, wherein the optical communication element operates to substantially transmit an optical signal received when no voltage is applied and to substantially reflect the optical signal received when the voltage is applied.
- 53. An optical processing device comprising:
an optical tap operable to split off at least a portion of the optical signal; a demultiplexer operable to receive the at least a portion of the optical signal and to separate the at least a portion of the optical signal into a plurality of wavelength signals; and an array of optical communication elements operable to receive at least some of the plurality of wavelength signals and to provide an optical processing function to the received wavelength signal, at least one of the optical communication elements comprising:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity; wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state in response to the applied voltage.
- 54. The optical processing device of claim 53, further comprising a multiplexer operable to receive the at least some of the plurality of wavelength signals from the array and to combine those signals into an multiple wavelength output optical signal.
- 55. The optical processing device of claim 53, further comprising an optical amplifier operable to amplify the multiple wavelength signal.
- 56. The optical processing device of claim 53, wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state at a rate associated with an average size of a packet traversing the communication element.
- 57. The optical processing device of claim 53, wherein the fixed layer comprises a fixed mirror layer and wherein the optical cavity comprises a Fabry-Perot cavity.
- 58. The optical processing device of claim 53, wherein the optical communication element operates to substantially transmit an optical signal received when no voltage is applied and to substantially reflect the optical signal received when the voltage is applied.
- 59. A fault tolerant network, comprising:
an ingress access node operable to receive an optical signal from a network element external to the fault tolerant network; and a fault tolerant node operable to receive the optical signal from the ingress access node and to perform a switching operation on the optical signal depending on a voltage applied to an optical communication element within the fault tolerant node, wherein the fault tolerant node allows transmission of the optical signal when no voltage is applied to the communication element and wherein the optical communication element comprises:
a fixed layer disposed outwardly from a substrate; and a unitary movable mirror assembly disposed outwardly from the fixed layer and forming with the fixed layer an optical cavity, the moveable mirror assembly operable to move relative to the fixed layer in response to a voltage applied to the moveable mirror assembly to affect a change in an optical characteristic of the optical cavity; wherein the optical communication element is operable to change between a substantially transmissive state and a less than substantially transmissive state in response to the applied voltage.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of application Ser. No. 09/631,276, by Mohammed N. Islam et al, filed Aug. 1, 2000, entitled “Micromechanical Optical Switch.”
Continuations (1)
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Number |
Date |
Country |
Parent |
09631276 |
Aug 2000 |
US |
Child |
10131744 |
Apr 2002 |
US |