IP Library Granted Patent US 6,864,987
Granted Patent B2
US 6,864,987 · App. 10/225,649 · Granted Mar 8, 2005

Interferometer having improved modulation depth and free-spectral range and method of manufacturing

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Quick Facts
Patent No.
US 6,864,987
App. No.
10/225,649
Granted
Mar 8, 2005
Kind
B2
Abstract

The present invention provides an interferometer. In one embodiment, the interferometer includes a translucent body having a first portion and a second portion, where the second portion has at least three internal reflective sides. The interferometer also includes an interface between the first and second portions, configured to reflect a portion of an optical signal received through the first portion and transmit a remaining portion of the optical signal into the second portion. Also disclosed are a method of manufacturing an interferometer and a transmitter incorporating the interferometer or the method.

Claims (27)

1. An interferometer, comprising:

a translucent body having a first portion and a second portion, and an interface between said first and second portions, said second portion having at least three internal reflective sides, said interface configured to reflect a portion of an optical signal received through said first portion, cause said reflected portion to exit said first portion without further reflection within said interferometer, and transmit a remaining portion of said optical signal into said second portion.

2. The interferometer as recited in claim 1 wherein said second portion is configured to internally reflect said remaining portion and said interface is further configured to allow transmission of said remaining portion through said first portion.

3. The interferometer as recited in claim 1 wherein a first one of said at least three internal reflective sides includes a polarization rotator film that rotates a polarization of said remaining portion to produce a rotated internally reflected optical signal such that said rotated internally reflected optical signal may pass through said interface and said first portion.

4. The interferometer as recited in claim 1 wherein said interface is configured to reflect a horizontal component of said optical signal and transmit a vertical component of said optical signal.

5. The interferometer as recited in claim 4 further comprising a polarization rotator plate proximate said first portion and configured to rotate a polarization of said optical signal.

6. The interferometer as recited in claim 1 wherein said first portion is a right triangular-shaped body having first and second sides having an anti-reflective coating thereon and positioned to receive said optical signal at an angle normal to a first side of said first portion, and wherein said second portion is a cube-shaped translucent body having four internal reflective sides.

7. The interferometer as recited in claim 1 wherein said interferometer forms at least a portion of a transmitter having a radiation source associated therewith.

8. A method of manufacturing an interferometer, comprising:

providing a first translucent body;

providing a second translucent body having at least three internal reflective sides; and

coupling said first and second translucent bodies to form an interface configured to reflect a portion of an optical signal received through said first translucent body, cause said reflected portion to exit said first portion without further reflection within said interferometer, and to transmit a remaining portion of said optical signal into said second translucent body.

9. The method as recited in claim 8 wherein said providing a second translucent body includes providing a second translucent body configured to produce at least a three-folded internally reflected optical signal from said remaining portion, and said coupling includes forming an interface configured to allow transmission of said at least three-folded internally reflected optical signal through said first translucent body.

10. The method as recited in claim 8 , further comprising providing a polarization rotator film on a first one of said at least three internal reflective sides that rotates a polarization of said remaining portion of said optical signal to produce a rotated internally reflected optical signal such that said rotated internally reflected optical signal may pass through said interface.

11. The method as recited in claim 8 wherein said coupling includes coupling with an interface surface configured to reflect a horizontal component of said optical signal and transmit a vertical component of said optical signal.

12. The method as recited in claim 11 , further comprising providing a polarization rotator plate proximate said first translucent body and configured to rotate a polarization of said optical signal.

13. The method as recited in claim 8 wherein said providing a first translucent body includes providing a right triangular-shaped translucent body positioned to receive said optical signal at an angle normal to a first side of said first translucent body, and wherein said providing a second translucent body includes providing a cube-shaped translucent body having body four includes internal reflective sides.

14. The method as recited in claim 13 wherein said providing a first translucent body includes providing a right triangular-shaped translucent body further having a second side and wherein each of said first and second sides of said first translucent body includes an anti-reflective coating thereon.

15. A transmitter, comprising:

a radiation source; and

an interferometer optically coupled to said radiation source, including:

a translucent body having a first portion and a second portion, and an interface between said first and second portions, said second portion having at least three internal reflective sides, said interface configured to reflect a portion of an optical signal received through said first portion, cause said reflected portion to exit said first portion without further reflection within said interferometer, and transmit a remaining portion of said optical signal into said second portion.

16. The transmitter as recited in claim 15 wherein a first one of said at least three internal reflective sides includes a polarization rotator film that rotates a polarization of said remaining portion of said optical signal to produce a rotated internally reflected optical signal such that said rotated internally reflected optical signal may pass through said interface.

17. The transmitter as recited in claim 15 wherein said interface is configured to reflect a horizontal component of said optical signal and transmit a vertical component of said optical signal.

18. The transmitter as recited in claim 15 further comprising a control system for controlling an output of said radiation source and said interferometer is coupled to said control system to provide an input signal to said control system.

19. The transmitter as recited in claim 18 wherein said control system includes a temperature gauge, a calibration table, and a temperature controller that are coupled to a controller to control said output of said radiation source based on said input signal.

20. The transmitter as recited in claim 15 further including a polarization rotator plate proximate said first portion and configured to rotate a polarization of an optical signal to be received in said first portion.

Assignments (4)
MERGER Recorded Jun 16, 2016
From: TRIQUINT SEMICONDUCTOR, INC.
To: QORVO US, INC.
Reel/Frame 039050/0193 →
MERGER Recorded Mar 28, 2011
From: TRIQUINT TECHNOLOGY HOLDING CO., A DELAWARE CORPORATION
To: TRIQUINT SEMICONDUCTOR, INC., A DELAWARE CORPORATION
Reel/Frame 026109/0478 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 5, 2004
From: AGERE SYSTEMS, INC.
To: TRIQUINT TECHNOLOGY HOLDING CO.
Reel/Frame 014959/0148 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2002
From: GUPTA, VIKAS; VERMA, KAUSHAL K.
To: AGERE SYSTEMS INC.
Reel/Frame 013223/0967 →