Claims
- 1. An optical switch, comprising:a first input member operable to support a first input waveguide having a reflective surface and operable to receive an optical signal; a first reflective output member coupled to the first input member and operable to support a first intermediate waveguide coupled to the first input waveguide; a first transmissive output member operable to support a second intermediate waveguide, the transmissive output member having a first position spaced apart from the input member such that the reflective surface of the input waveguide totally internally reflects the optical signal to the first intermediate waveguide, and a second position in proximal contact with the input member such that the second intermediate waveguide frustrates the total internal reflection of the input waveguide and receives the optical signal; a second input member operable to support the first intermediate waveguide having a reflective surface and the second intermediate waveguide having a reflective surface; a second reflective output member coupled to the second input member and operable to support a first output waveguide coupled to the first intermediate waveguide and a second output waveguide coupled to the second intermediate waveguide; and a second transmissive output member operable to support a third output waveguide and a fourth output waveguide, the second transmissive output member having a first position spaced apart from the second input member and a second position in proximal contact with the second input member.
- 2. The optical switch of claim 1, wherein:the first transmissive output member is spaced apart from the first input member; and the second transmissive output member is spaced apart from the second input member such that the reflective surface of the first intermediate waveguide totally internally reflects the optical signal to the first output waveguide.
- 3. The optical switch of claim 1, wherein:the first transmissive output member is spaced apart from the first input member; and the second transmissive output member is placed in proximal contact with the second input member such that the third output waveguide frustrates the total internal reflection of the first intermediate waveguide and receives the optical signal.
- 4. The optical switch of claim 1, wherein:the first transmissive output member is placed in proximal contact with the first input member; and the second transmissive output member is spaced apart from the second input member such that the reflective surface of the second intermediate waveguide totally internally reflects the optical signal to the second output waveguide.
- 5. The optical switch of claim 1, wherein:the first transmissive output member is placed in proximal contact with the first input member; and the second transmissive output member is placed in proximal contact with the second input member such that the fourth output waveguide frustrates the total internal reflection of the second intermediate waveguide and receives the optical signal.
- 6. The optical switch of claim 1, wherein the second intermediate waveguide comprises a contact surface operable to contact proximally the reflective surface of the in put waveguide when the first transmissive output member is placed in the second position.
- 7. The optical switch of claim 1, wherein:the input waveguide comprises an input optical fiber; the intermediate waveguides comprise intermediate optical fibers; and the output waveguides comprise output optical fibers.
- 8. The optical switch of claim 1, wherein:the input waveguide comprises an input planar waveguide; the intermediate waveguides comprise intermediate planar waveguides; and the output waveguides comprise output planar waveguides.
- 9. The optical switch of claim 1, wherein:the reflective surface of the input waveguide is at an angle with respect to the longitudinal axis of the input waveguide; and the second intermediate waveguide comprises a contact surface that is substantially parallel to the angle of the reflective surface of the input waveguide.
- 10. The optical switch of claim 1, wherein:the first input member comprises a plurality of grooves extending from a first face to a second face of the input member and the input waveguide is positioned along a groove of the first input member; the first reflective output member comprises a plurality of grooves extending from a first face to a second face of the first reflective output member and the first intermediate waveguide is positioned along a groove of the first reflective output member; and the first transmissive output member comprises a plurality of grooves extending from a first face to a second face of the first transmissive output member and the second intermediate waveguide is positioned along a groove of the first transmissive output member.
- 11. The optical switch of claim 10, wherein:the grooves of the input member comprise V-grooves formed on a surface of the input member; the grooves of the reflective output member comprise V-grooves formed on a surface of the reflective output member; and the grooves of the transmissive output member comprise V-grooves formed on a surface of the transmissive output member.
- 12. The optical switch of claim 10, wherein:the grooves of the input member comprise channels formed through the input member; the grooves of the reflective output member comprise channels formed through the reflective output member; and the grooves of the transmissive output member comprise channels formed through the transmissive output member.
- 13. The optical switch of claim 1, wherein:the first input member comprises a contact face that is at an angle substantially similar to the angle of the reflective surface of the input waveguide; the first transmissive output member comprises a contact face that is substantially parallel to the angle of the contact face of the first input member; and the contact face of the first transmissive output member is in proximal contact with the contact face of the first input member when the first transmissive output member is placed in the second position.
- 14. The optical switch of claim 1, further comprising:a first actuator coupled to the first transmissive output member and operable to place the first transmissive output member in a selected one of the first position or the second position in response to a first control signal; and a second actuator coupled to the second transmissive output member and operable to place the second transmissive output member in a selected one of the first position or the second position in response to a second control signal.
- 15. A method for processing an optical signal, comprising:communicating a first optical signal in an input waveguide; totally internally reflecting the optical signal at a reflective surface of the input waveguide toward a first intermediate waveguide if a second intermediate waveguide is spaced apart from the input waveguide; frustrating the total internal reflection of the optical signal at the reflective surface of the input waveguide such that the second intermediate waveguide receives the optical signal, if the second intermediate waveguide is placed in proximal contact with the input waveguide; totally internally reflecting the optical signal toward a first output waveguide; and frustrating the total internal reflection of the optical signal such that a second output waveguide receives the optical signal.
- 16. The method of claim 15, wherein:the second intermediate waveguide is spaced apart from the input waveguide; and the second output waveguide is spaced apart from the first intermediate waveguide such that the reflective surface of the first intermediate waveguide totally internally reflects the optical signal toward the first output waveguide.
- 17. The method of claim 15, wherein:the second intermediate waveguide is spaced apart from the input waveguide; and the second output waveguide is placed in proximal contact with the first intermediate waveguide to frustrate the total internal reflection of the optical signal such that the second output waveguide receives the optical signal.
- 18. The method of claim 15, wherein:the second intermediate waveguide is placed in proximal contact with the input waveguide; and the second output waveguide is spaced apart from the second intermediate waveguide such that the reflective surface of the second intermediate waveguide totally internally reflects the optical signal toward the first output waveguide.
- 19. The method of claim 15, wherein:the second intermediate waveguide is placed in proximal contact with the input waveguide; and the second output waveguide is placed in proximal contact with the second intermediate waveguide to frustrate the total internal reflection of the optical signal such that the second output waveguide receives the optical signal.
- 20. The method of claim 15, wherein the second intermediate waveguide comprises a contact surface operable to contact proximally the reflective surface of the input waveguide when the second intermediate waveguide is placed in proximal contact with the input waveguide.
- 21. The method of claim 15, wherein:the input waveguide comprises an input optical fiber; the intermediate waveguides comprise intermediate optical fibers; and the output waveguides comprise output optical fibers.
- 22. The method of claim 15, wherein:the input waveguide comprises an input planar waveguide; the intermediate waveguides comprise intermediate planar waveguides; and the output waveguides comprise output planar waveguides.
- 23. The method of claim 15, wherein:the reflective surface of the input waveguide is at an angle with respect to the longitudinal axis of the input waveguide; and the second intermediate waveguide comprises a contact surface that is substantially parallel to the angle of the reflective surface of the input waveguide.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is related to and filed concurrently with pending U.S. patent application Ser. No. 09/713,874, filed on Nov. 15, 2000, now U.S. Pat. No. 6,393,175, entitled “Integrated Fiber Array Optical Switch and Method of Operation,” pending U.S. patent application Ser. No. 09/713,869, filed on Nov. 15, 2000, entitled “2×2 Integrated Fiber Array Optical Switch and Method of Operation,” and pending U.S. patent application Ser. No. 09/713,924, filed on Nov. 15, 2000, now U.S. Pat. No. 6,393,174, entitled “Integrated Fiber Array Optical Switch Using Double-Pass Propagation and Method of Operation.” These applications have been commonly assigned to Optical Switch Corporation.
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