IP Library Granted Patent US 9,057,839
Granted Patent B2
US 9,057,839 · App. 13/942,132 · Granted Jun 16, 2015

Method of using an optical device for wavelength locking

Inventor: Mahmoud Rasras (Nashville, TN)
Assignee: Alcatel Lucent
G02B6/26B29D11/00663G02B6/4201H01S3/1305
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Quick Facts
Patent No.
US 9,057,839
App. No.
13/942,132
Granted
Jun 16, 2015
Kind
B2
Abstract

A method of using an optical device. The method comprises splitting a light beam into a first beam that passes through a first arm of a waveguide, and, into a second beam that passes through a second arm of the waveguide. The method also comprises passing at least one of the first beam or second beam through one or more optical resonators that are optically coupled to at least one of the first or second arms. The method also comprises determining a difference in the light-transmittance of the first beam exiting the first arm and the light-transmittance of the second beam exiting the second arm, and, adjusting the operating wavelength if the difference in transmittance exceeds a predefined value.

Claims (35)

1. A method of using an optical device, comprising:

splitting a light beam into a first beam that passes through a first waveguide arm of a waveguide structure and into a second beam that passes through a second waveguide arm of said waveguide structure;

passing at least one of said first beam or second beam through one or more optical resonators that are optically coupled to at least one of said first waveguide arm or said second waveguide arm;

determining a difference in light-transmittance of said first beam exiting said first waveguide arm and light-transmittance of said second beam exiting said second waveguide arm;

adjusting said operating wavelength if said difference exceeds a predefined value; and

adjusting a resonance frequency of said one or more optical resonators so that an operating wavelength of said light beam is positioned over a sloped portion of a transmittance curve of said at least one first waveguide arm or second waveguide arm optically coupled to said one or more optical resonators.

2. The method of claim 1 , further including adjusting a steepness of said transmittance curve such that said operating wavelength is centered on a steeper-sloped or a shallower-sloped portion of said transmittance curve.

3. The method of claim 1 , further including:

passing said first beam through a first one of said optical resonators that is optically coupled to said first waveguide arm; and

passing said second beam through a second one of said optical resonators that is optically coupled to said second waveguide arm.

4. The method of claim 1 , wherein said adjusting of said operating wavelength includes sending a control signal from a control module to a light source to cause said light source to emit light at a different said operating wavelength.

5. The method of claim 1 , further including:

measuring said light-transmittance of said first beam with a first photodetector positioned to receive said first light beam exiting an end of said first waveguide arm; and

measuring said light-transmittance of said second beam with a second photodetector positioned to receive said second light beam exiting an end said second waveguide arm.

6. A method of using an optical device, comprising:

splitting a light beam into a first beam that passes through a first waveguide arm of a waveguide structure and into a second beam that passes through a second waveguide arm of said waveguide structure;

passing at least one of said first beam or second beam through one or more optical resonators that are optically coupled to at least one of said first waveguide arm or said second waveguide arm;

determining a difference in light-transmittance of said first beam exiting said first waveguide arm and light-transmittance of said second beam exiting said second waveguide arm;

adjusting said operating wavelength if said difference exceeds a predefined value;

adjusting a first optical coupler coupled to said first waveguide arm and said first optical resonator to change a resonance frequency of said first optical resonator such that said operating wavelength is centered on a positively sloped portion of said transmittance curve of said first waveguide arm; and

adjusting a second optical coupler coupled to said second waveguide arm and said second optical resonator to change a resonance frequency of said second optical resonator such that said operating wavelength is centered on a negatively sloped portion of said transmittance curve of said second waveguide arm.

7. A method of using an optical device, comprising:

splitting a light beam into a first beam that passes through a first waveguide arm of a waveguide structure and into a second beam that passes through a second waveguide arm of said waveguide structure;

passing at least one of said first beam or second beam through one or more optical resonators that are optically coupled to at least one of said first waveguide arm or said second waveguide arm;

determining a difference in light-transmittance of said first beam exiting said first waveguide arm and light-transmittance of said second beam exiting said second waveguide arm;

adjusting said operating wavelength if said difference exceeds a predefined value; and

wherein at least one of said optical resonators is substantially athermalized, said substantially athermalized optical resonator including:

a sequence of end-coupled and spaced-apart segments of a light-guiding core having a thermo-optic coefficient, and,

optical material between adjacent ones of said segments, said optical material having thermo-optic coefficient of opposite sign than a sign of said thermo-optic coefficient of said spaced-apart segments.

8. A method of using an optical device, comprising:

splitting a light beam into a first beam that passes through a first waveguide arm of a waveguide structure and into a second beam that passes through a second waveguide arm of said waveguide structure;

passing at least one of said first beam or second beam through one or more optical resonators that are optically coupled to at least one of said first waveguide arm or said second waveguide arm;

determining a difference in light-transmittance of said first beam exiting said first waveguide arm and light-transmittance of said second beam exiting said second waveguide arm;

adjusting said operating wavelength if said difference exceeds a predefined value; and

wherein combined transmittance curves from a first one of said optical resonators and a second one of said second optical resonators includes a v-shaped notch centered in a C or L optical communication band.

Assignments (10)
PATENT SECURITY AGREEMENT Recorded Aug 6, 2024
From: RPX CORPORATION; RPX CLEARINGHOUSE LLC
To: BARINGS FINANCE LLC, AS COLLATERAL AGENT
Reel/Frame 068328/0674 →
RELEASE OF LIEN ON PATENTS Recorded Aug 5, 2024
From: BARINGS FINANCE LLC
To: RPX CORPORATION
Reel/Frame 068328/0278 →
PATENT SECURITY AGREEMENT Recorded Apr 22, 2023
From: RPX CORPORATION
To: BARINGS FINANCE LLC, AS COLLATERAL AGENT
Reel/Frame 063429/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 28, 2021
From: PROVENANCE ASSET GROUP LLC
To: RPX CORPORATION
Reel/Frame 059352/0001 →
RELEASE OF SECURITY INTEREST Recorded Nov 30, 2021
From: CORTLAND CAPITAL MARKETS SERVICES LLC
To: PROVENANCE ASSET GROUP HOLDINGS LLC; PROVENANCE ASSET GROUP LLC
Reel/Frame 058983/0104 →
RELEASE OF SECURITY INTEREST Recorded Nov 30, 2021
From: NOKIA US HOLDINGS INC.
To: PROVENANCE ASSET GROUP HOLDINGS LLC; PROVENANCE ASSET GROUP LLC
Reel/Frame 058363/0723 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 23, 2015
From: ALCATEL-LUCENT USA INC.
To: ALCATEL LUCENT
Reel/Frame 035880/0573 →
RELEASE OF SECURITY INTEREST Recorded Aug 24, 2014
From: CREDIT SUISSE AG
To: ALCATEL-LUCENT USA, INC.
Reel/Frame 033625/0583 →
SECURITY AGREEMENT Recorded Nov 8, 2013
From: ALCATEL-LUCENT USA, INC.
To: CREDIT SUISSE AG
Reel/Frame 031599/0941 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 15, 2013
From: RASRAS, MAHMOUD
To: ALCCATEL-LUCENT USA, INC.
Reel/Frame 030798/0653 →
Continuity (2)
Division 12611187 · Nov 3, 2009
Related Publication 20130301989A1 · Nov 14, 2013