Claims
- 1. A tunable micro-electro-mechanical system (MEMS) optical device comprising:
a performance cavity having a stationary membrane and a tuning membrane wherein a functional performance of said MEMS optical device depending on a gap between said stationary membrane and said tuning membrane; and a tuning cavity disposed immediately next to said tuning membrane having a tuning means for moving said tuning membrane for adjusting said gap between said stationary membrane and said tuning membrane for tuning said functional performance of said MEMS optical device.
- 2. The MEMS optical device of claim 1 wherein:
said tuning cavity further includes a first electrode disposed on said tuning membrane and a second electrode disposed on a substrate supporting said tuning cavity for applying a voltage to move said tuning membrane.
- 3. The MEMS optical device of claim 1 further comprising:
an optical device control circuit connected to said tuning means for controlling said gap between said stationary membrane and said tuning membrane.
- 4. The MEMS optical device of claim 1 wherein:
said stationary membrane and said tuning membrane are contemporaneously manufactured by employing an identical set of processing steps on a same semiconductor wafer.
- 5. The MEMS optical device of claim 1 wherein:
said stationary membrane and said tuning membrane each further comprising multiple layers.
- 6. The MEMS optical device of claim 1 wherein:
said stationary membrane and said tuning membrane having substantially identical reflection rate.
- 7. The MEMS optical device of claim 1 wherein:
said performance cavity further includes a spacer disposed between said stationary membrane and said tuning membrane, said spacer having a thickness substantially equal to said gap between said stationary membrane and said tuning membrane.
- 8. The MEMS device of claim 1 wherein:
the stationary membrane and said tuning membrane comprising a plurality of layers with a sequence of alternating high-low refraction indexes whereby said stationary membrane and said tuning membrane having reflection rates defined by the application of one certain optical device.
- 9 The MEMS device of claim 1 wherein:
the stationary membrane and said tuning membrane comprising an odd number of layers with a sequence of alternating high-low refraction indexes with two outermost layers each having a high refraction index whereby said stationary membrane and said tuning membrane having reflection rates defined by the application of one certain optical device.
- 10 The MEMS device of claim 1 wherein:
said stationary membrane and said tuning membrane having substantially different reflection rates.
- 11. A tunable optical device comprising:
a tuning cavity having a tuning means provided for bonding to an optical cell comprising a tuning membrane wherein said tuning means disposed near said tuning membrane for moving said tuning membrane for tuning said tunable optical cell bonded thereon.
- 12. The optical device of claim 11 wherein:
said tuning cavity further includes a first electrode disposed on said tuning membrane and a second electrode disposed on a substrate supporting said tuning cavity for applying a voltage to move said tuning membrane.
- 13. The optical device of claim 11 further comprising:
an optical device control circuit connected to said tuning means for controlling and moving said tuning membrane.
- 14. The optical device of claim 11 wherein:
said tuning cavity further includes through hole disposed along an optical path for an optical transmission passing through said tunable membrane for providing an interface-free and ripple-free optical path for said optical transmission.
- 15. The optical device of claim 11 wherein:
said tunable optical cells constituting an optical filter for bonding to said tuning cavity and tunable by moving said tunable membrane.
- 16. The optical device of claim 11 wherein:
said tunable optical cells constituting an optical attenuator for bonding to said tuning cavity and tunable by moving said tunable membrane.
- 17. The optical device of claim 11 wherein:
said tunable optical cells constituting an optical switch for bonding to said tuning cavity and tunable by moving said tunable membrane.
- 18. The optical device of claim 11 wherein:
said tunable optical cells constituting an optical dispersion compensator for bonding to said tuning cavity and tunable by moving said tunable membrane.
- 19. The optical device of claim 11 wherein:
said optical device constituting a micro-electro-mechanical system (MEMS) optical device manufactured by applying a micro-electro-mechanical system (MEMS) technology.
- 20. The optical device of claim 11 wherein:
said tunable optical cell further comprising a performance cavity having a stationary membrane disposed face-to-face with said tuning membrane wherein a functional performance of said optical device depending on a gap between said stationary membrane and said tuning membrane, and the reflection rates of two membranes.
- 21. The optical device of claim 20 wherein:
said stationary membrane and said tuning membrane are contemporaneously manufactured by employing an identical set of processing steps on a same semiconductor wafer.
- 22. The optical device of claim 20 wherein:
said stationary membrane and said tuning membrane each further comprising reflection rates defined by the application of one certain optical device.
- 23. The optical device of claim 20 wherein:
said stationary membrane and said tuning membrane having substantially identical reflection rate.
- 24. The optical device of claim 20 wherein:
said performance cavity further includes a spacer disposed between said stationary membrane and said tuning membrane, said spacer having a thickness substantially equal to said gap between said stationary membrane and said tuning membrane.
- 25. The device of claim 20 wherein:
said stationary membrane and said tuning membrane comprising a plurality of layers with a sequence of alternating high-low refraction indexes whereby said stationary membrane and said tuning membrane having reflection rates defined by the application of one certain optical device.
- 26. The device of claim 20 wherein:
said stationary membrane and said tuning membrane comprising an odd number of layers with a sequence of alternating high-low refraction indexes with two outermost layers each having a high refraction index whereby said stationary membrane and said tuning membrane having reflection rates defined by the application of one certain optical device.
- 27. The device of claim 14 further comprising:
a total reflection mirror disposed below said through hole for reflecting said optical transmission back for transmitting twice through said tunable optical cell.
- 28. The MEMS device of claim 27 wherein:
said total reflection mirror is placed with a small tilt angle relative to a perpendicular plane of said optical path for reflecting said optical transmission without generating an unexpected resonating effect and ripple.
- 29. A micro-electro-mechanical system (MEMS) device comprising:
a first free-standing optical transmissive membrane supported on a first substrate having a first optically active portion constituting a stationary membrane; a second free-standing optical transmissive membrane supported on a second substrate having a second optically active portion constituting a tuning membrane; and a tuning cavity disposed immediately next to said tuning membrane having a tuning means for moving said tuning membrane for adjusting a gap between said stationary membrane and said tuning membrane for tuning said functional performance of said MEMS optical device.
- 30. The MEMS optical device of claim 29 wherein:
said first substrate bonded to said second substrate with said first and second optical transmissive membranes defining a resonating chamber constituting an interface-free optical path entering and exiting said resonating chamber; and said tuning cavity further includes through hole along said interface-free optical path for providing an interface-free and ripple-free optical path for an optical transmission.
- 31. The MEMS optical device of claim 29 wherein:
said tuning cavity further includes a first electrode disposed on said tuning membrane and a second electrode disposed on a substrate supporting said tuning cavity for applying a voltage to move said tuning membrane.
- 32. The MEMS optical device of claim 29 further comprising:
an optical device control circuit connected to said tuning means for controlling said gap between said stationary membrane and said tuning membrane.
- 33. The MEMS device of claim 29 wherein:
the stationary membrane and said tuning membrane comprising a plurality of layers with a sequence of alternating high-low refraction indexes whereby said stationary membrane and said tuning membrane having reflection rates substantially greater than 50%.
- 34. A method for configuring a tunable optical device comprising:
forming a tuning cavity by providing a tuning means for alternately bonding one of at least two different tunable optical cells each comprising a tuning membrane and disposing said tuning cavity near said tuning membrane for moving said tuning membrane for tuning one of said at least two tunable optical cells bonded thereon.
- 35. The method of claim 34 wherein:
said step of forming said tuning cavity further includes a step of disposing a first electrode on said tuning membrane and disposing a second electrode on a substrate supporting said tuning cavity for applying a voltage to move said tuning membrane.
- 36. The method of claim 34 further comprising:
connecting an optical device control circuit to said tuning means for controlling and moving said tuning membrane.
- 37. The method of claim 34 wherein:
said step of forming said tuning cavity further includes a step of opening a through hole in said tuning cavity along an optical path for an optical transmission passing through said tunable membrane for providing an interface-free and ripple-free optical path for said optical transmission.
- 38. The method of claim 34 wherein:
said step of alternately bonding said one of at least two different types of tunable optical cells further comprising a step of bonding an optical filter to said tuning cavity.
- 39. The method of claim 34 wherein:
said step of alternately bonding said one of at least two different types of tunable optical cells further comprising a step of bonding an optical attenuator to said tuning cavity.
- 40. The method of claim 34 wherein:
said step of alternately bonding said one of at least two different types of tunable optical cells further comprising a step of bonding an optical switch to said tuning cavity.
- 41. The method of claim 34 wherein:
said step of alternately bonding said one of at least two different types of tunable optical cells further comprising a step of bonding an optical dispersion compensator to said tuning cavity.
- 42. The method of claim 34 wherein:
said step of alternately bonding said one of at least two different types of tunable optical cells to said tunable cavity further comprising a step of applying a micro-electro-mechanical system (MEMS) technology for manufacturing and bonding said one of at least two different types of tunable optical cells to said tunable cavity.
- 43. The method of claim 35 wherein:
said step of forming said first and second electrodes further comprising a step of forming said first and second electrodes as face-to-face conductive layers disposed on said tuning membrane and said substrate.
- 44. The method of claim 35 wherein:
said step of forming said first and second electrodes further comprising a step of forming said first electrode as a ring-shaped conductive layer on said tuning membrane.
- 45. The method of claim 35 wherein:
said step of forming said first and second electrodes further comprising a step of forming said first and electrode as conductive layer comprising a plurality of small holes on at least one of said conductive layers.
- 46. A method for configuring an electrode for a tunable optical device comprising:
forming a conductive layer on a membrane comprising a plurality of small holes on said conductive layer.
- 47. A method for configuring a universal tunable optical cell comprising:
forming a tuning cavity on a substrate with a movable optical membrane covering a light pass hole opened in said substrate; and forming a face-to-face conductive layers on said membrane and said substrate for electronically tuning said membrane.
- 48. The method for configuring the universal tunable optical cell of claim 47 further comprising:
alternately bonding at least two different kinds of optical cells for alternately performing at least two different tunable optical functions to said tuning cavity.
Parent Case Info
[0001] This Application claims a priority date of Jan. 22, 2002 benefited from a previously filed Provisional Patent Application No. 60/351,689 filed on Jan. 22, 2002 by the Applicants of this Formal Patent Application.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60351689 |
Jan 2002 |
US |