U.S. patents available from 1976 to present.
U.S. patent applications available from 2005 to present.

Temperature compensated optical multiplexer

Patent 7280722 Issued on October 9, 2007. Estimated Expiration Date: Icon_subject January 25, 2025. Estimated Expiration Date is calculated based on simple USPTO term provisions. It does not account for terminal disclaimers, term adjustments, failure to pay maintenance fees, or other factors which might affect the term of a patent.

Patent References

Optical waveguide transmission devices
Patent #: 6493487
Issued on: 12/10/2002
Inventor: Temkin, et al.

Temperature compensated optical waveguide structures Patent #: 6775437
Issued on: 08/10/2004
Inventor: Kazarinov, et al.

Inventors

Assignee

Application

No. 11042612 filed on 01/25/2005

US Classes:

385/37, Grating385/14, INTEGRATED OPTICAL CIRCUIT385/25, Movable coupler385/31, Input/output coupler385/39, Particular coupling structure385/46, Star coupler359/196, DEFLECTION USING A MOVING ELEMENT OR MEDIUM (OFFSETTING OR CHANGING AT LEAST A PORTION OF THE BEAM)359/197, Using a periodically moving element (periodic change of optically reflecting, refracting or diffracting element)359/212, Including reflective type moving element359/220, Having planar rotating reflector with transverse rotation axis359/223, By moving a reflective element359/224Reflective element moved by deformable support

Examiners

Primary: Font, Frank G.
Assistant: Anderson, Guy G.

Attorney, Agent or Firm

International Class

G02B 6/12

Abstract

An optical multiplexer that adjusts the wavelength response and compensates for temperature effects by using rotatable mirror. The wavelength response of the device is adjusted by aligning the mirror at a correct angle with respect to the surface terminating the optical waveguide grating. The temperature dependence of the index of refraction of the material comprising the waveguides is compensated for by rotating a reflecting surface of the mirror, the rotation based on differential thermal expansion. Some exemplary embodiments may comprise a slab waveguide on a substrate (the slab waveguide having a first and second arcuate end surfaces) attached to a submount, a mirror assembly rigidly attached to the submount (the mirror assembly comprising a first and second materials having different coefficients of thermal expansion), and an optical waveguide grating (upon the substrate attached to the submount) optically coupled between the second arcuate surface and the mirror assembly. A portion of the mirror assembly between the reflector surface and where the mirror assembly is rigidly attached to the submount deforms as a function of temperature to change an angle between the optical waveguide grating and the reflecting surface.

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