Claims
- 1. An optical switch device comprising:
a substrate; a flexible membrane attached at at least one end to a surface of the substrate in proximity to an optical port portion of the substrate, the flexible membrane being configured such that, in a first state, the flexible membrane is disposed over the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the flexible membrane, and, in a second state, the flexible membrane is disposed to expose the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the optical port portion of the substrate; and a plurality of dimples formed on the flexible membrane such that when the flexible membrane is in the first state, the flexible membrane contacts the substrate at the dimples.
- 2. The optical switch device of claim 1, wherein the flexible membrane is formed such that in the second state, the flexible membrane is coiled away from the optical port portion of the substrate, and, in the first state, the flexible membrane is uncoiled over the optical port portion of the substrate.
- 3. The optical switch device of claim 2, wherein the flexible membrane is normally in a coiled condition, and, upon application of an operating voltage across the substrate and the flexible membrane, the flexible membrane uncoils over the aperture.
- 4. The optical switch device of claim 1, further comprising a raised annular rim member formed on the substrate around the optical port portion of the substrate such that, when the flexible membrane is in the first state, a bottom surface of the flexible membrane contacts the raised annular rim member.
- 5. The optical switch device of claim 1, wherein the flexible membrane is formed with tensile stress such that it is pulled taut when it is in the first state.
- 6. The optical switch device of claim 1, wherein the flexible member is attached to the substrate at an attachment edge of the flexible member extending along a width dimension of the flexible member, the flexible member being tapered such that the attachment edge of the flexible member is shorter than the width of the flexible member measured at the portion of the flexible member that covers the optical port portion of the substrate when the flexible member is in the first state.
- 7. An optical switch device comprising:
a substrate; a flexible membrane attached at at least one end to a surface of the substrate in proximity to an optical port portion of the substrate, the flexible membrane being configured such that, in a first state, the flexible membrane is disposed over the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the flexible membrane, and, in a second state, the flexible membrane is disposed to expose the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the optical port portion of the substrate; and a raised annular rim member formed on the substrate around the optical port portion of the substrate such that, when the flexible membrane is in the first state, a bottom surface of the flexible membrane contacts the raised annular rim member.
- 8. The optical switch device of claim 7, wherein the flexible membrane is formed such that in the second state, the flexible membrane is coiled away from the optical port portion of the substrate, and, in the first state, the flexible membrane is uncoiled over the optical port portion of the substrate.
- 9. The optical switch device of claim 8, wherein the flexible membrane is normally in a coiled condition, and, upon application of an operating voltage across the substrate and the flexible membrane, the flexible membrane uncoils over the optical port portion of the substrate.
- 10. The optical switch device of claim 7, wherein the flexible member is attached to the substrate at an attachment edge of the flexible member extending along a width dimension of the flexible member, the flexible member being tapered such that the attachment edge of the flexible member is shorter than the width of the flexible member measured at the portion of the flexible member that covers the optical port portion of the substrate when the flexible member is in the first state.
- 11. An optical switch device comprising:
a substrate; and a flexible membrane attached at at least one end to a surface of the substrate in proximity to an optical port region of the substrate, the flexible membrane being configured such that, in a first state, the flexible membrane is disposed over the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the flexible membrane, and, in a second state, the flexible membrane is disposed to expose the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the optical port portion of the substrate; wherein the flexible member is attached to the substrate at an attachment edge of the flexible member extending along a width dimension of the flexible member, the flexible member being tapered such that the attachment edge of the flexible member is shorter than the width of the flexible member measured at the portion of the flexible member that covers the optical port portion of the substrate when the flexible member is in the first state.
- 12. The optical switch device of claim 11, wherein the flexible membrane is formed such that in the second state, the flexible membrane is coiled away from the optical port portion of the substrate, and, in the first state, the flexible membrane is uncoiled over the optical port portion of the substrate.
- 13. The optical switch device of claim 12, wherein the flexible membrane is normally in a coiled condition, and, upon application of an operating voltage across the substrate and the flexible membrane, the flexible membrane uncoils over the optical port portion of the substrate.
- 14. An optical switching method comprising:
a substrate; a flexible membrane attached at at least one end to a surface of the substrate in proximity to an optical port portion of the substrate, the flexible membrane being configured such that, in a first state, the flexible membrane is disposed over the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the flexible membrane, and, in a second state, the flexible membrane is disposed to expose the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the optical port portion of the substrate; and a plurality of dimples formed on the flexible membrane such that when the flexible membrane is in the first state, the flexible membrane contacts the substrate at the dimples.
- 15. The optical switching method of claim 14, wherein the flexible membrane is formed such that in the second state, the flexible membrane is coiled away from the optical port portion of the substrate, and, in the first state, the flexible membrane is uncoiled over the optical port portion of the substrate.
- 16. The optical switching method of claim 15, wherein the flexible membrane is normally in a coiled condition, and, upon application of an operating voltage across the substrate and the flexible membrane, the flexible membrane uncoils over the aperture.
- 17. The optical switching method of claim 14, further comprising a raised annular rim member formed on the substrate around the optical port portion of the substrate such that, when the flexible membrane is in the first state, a bottom surface of the flexible membrane contacts the raised annular rim member.
- 18. The optical switching method of claim 14, wherein the flexible member is attached to the substrate at an attachment edge of the flexible member extending along a width dimension of the flexible member, the flexible member being tapered such that the attachment edge of the flexible member is shorter than the width of the flexible member measured at the portion of the flexible member that covers the optical port portion of the substrate when the flexible member is in the first state.
- 19. An optical switching method comprising:
a substrate; a flexible membrane attached at at least one end to a surface of the substrate in proximity to an optical port portion of the substrate, the flexible membrane being configured such that, in a first state, the flexible membrane is disposed over the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the flexible membrane, and, in a second state, the flexible membrane is disposed to expose the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the optical port portion of the substrate; and a raised annular rim member formed on the substrate around the optical port portion of the substrate such that, when the flexible membrane is in the first state, a bottom surface of the flexible membrane contacts the raised annular rim member.
- 20. The optical switching method of claim 19, wherein the flexible membrane is formed such that in the second state, the flexible membrane is coiled away from the optical port portion of the substrate, and, in the first state, the flexible membrane is uncoiled over the optical port portion of the substrate.
- 21. The optical switching method of claim 20, wherein the flexible membrane is normally in a coiled condition, and, upon application of an operating voltage across the substrate and the flexible membrane, the flexible membrane uncoils over the optical port portion of the substrate.
- 22. The optical switching method of claim 19, wherein the flexible member is attached to the substrate at an attachment edge of the flexible member extending along a width dimension of the flexible member, the flexible member being tapered such that the attachment edge of the flexible member is shorter than the width of the flexible member measured at the portion of the flexible member that covers the optical port portion of the substrate when the flexible member is in the first state.
- 23. An optical switching method comprising:
a substrate; and a flexible membrane attached at at least one end to a surface of the substrate in proximity to an optical port region of the substrate, the flexible membrane being configured such that, in a first state, the flexible membrane is disposed over the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the flexible membrane, and, in a second state, the flexible membrane is disposed to expose the optical port portion of the substrate such that light directed toward the optical port portion of the substrate impinges on the optical port portion of the substrate; wherein the flexible member is attached to the substrate at an attachment edge of the flexible member extending along a width dimension of the flexible member, the flexible member being tapered such that the attachment edge of the flexible member is shorter than the width of the flexible member measured at the portion of the flexible member that covers the optical port portion of the substrate when the flexible member is in the first state.
- 24. The optical switching method of claim 23, wherein the flexible membrane is formed such that in the second state, the flexible membrane is coiled away from the optical port portion of the substrate, and, in the first state, the flexible membrane is uncoiled over the optical port portion of the substrate.
- 25. The optical switching method of claim 24, wherein the flexible membrane is normally in a coiled condition, and, upon application of an operating voltage across the substrate and the flexible membrane, the flexible membrane uncoils over the optical port portion of the substrate.
RELATED APPLICATION
[0001] This application is based on U. S. provisional patent application serial No. 60/187,226, filed on Mar. 3, 2000; U. S. provisional patent application serial No. 60/188,119, filed on Mar. 9, 2000; and U. S. provisional patent application serial No. 60/220,355, filed on Jul. 24, 2000.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60220355 |
Jul 2000 |
US |
|
60188119 |
Mar 2000 |
US |
|
60187226 |
Mar 2000 |
US |