IP Library Granted Patent US 6,947,194
Granted Patent B2
US 6,947,194 · App. 10/754,705 · Granted Sep 20, 2005

Method for compensating polarization mode dispersion, polarization mode dispersion compensator and optical fiber communication system

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Quick Facts
Patent No.
US 6,947,194
App. No.
10/754,705
Granted
Sep 20, 2005
Kind
B2
Abstract

An optical signal is introduced into a polarization rotator to control the optical signal so that the output of the optical signal is maximized through the rotation of a plane of polarization of the optical signal, and then, introduced into the polarizer to pass a linear polarization of the optical signal therethrough, and then, introduced into the optical electric power detector to detect the output of the optical signal.

Claims (34)

1. A method for compensating polarization mode dispersion, comprising the steps of:

extracting and selecting an optical signal as a monitoring signal,

detecting an output of said optical signal, and

controlling said optical signal so that said output of said optical signal is maximized through rotation of a plane of polarization of said optical signal.

2. The compensating method as defined in claim 1 , wherein said optical signal is controlled with a polarization mode dispersion compensator.

3. The compensating method as defined in claim 2 , wherein said polarization mode dispersion compensator comprises a polarization rotator, a polarizer and an optical electric power detector, whereby said optical signal is introduced into said polarization rotator to control said optical signal so that said output of said optical signal is maximized through the rotation of a plane of polarization of said optical signal, and then, introduced into said polarizer to pass a linear polarization of said optical signal therethrough, and then, introduced into said optical electric power detector to detect said output of said optical signal.

4. The compensating method as defined in claim 1 , wherein said optical signal is controlled in multistage with a plurality of polarization mode dispersion compensators.

5. The compensating method as defined in claim 3 , wherein said polarization rotator is a Faraday rotator.

6. The compensating method as defined in claim 1 , further comprising the step of amplifying said output of said optical signal.

7. The compensating method as defined in claim 6 , wherein said output of said optical signal is amplified with a rare earth metal doped optical fiber amplifier.

8. A polarization mode dispersion compensator, comprising:

a polarization rotator,

a polarizer, and

an optical electric power detector,

wherein a given optical signal is introduced as a monitoring signal into said polarization rotator to rotate a plane of polarization of said optical signal so that an output of said optical signal is maximized, and then, introduced into said polarizer to pass a linear polarization of said optical signal therethrough, and then, introduced into said optical electric power detector to detect said output of said optical signal.

9. The polarization mode dispersion compensator as defined in claim 8 , wherein said polarization rotator is a Faraday rotator.

10. An optical fiber communication system, comprising:

a transmitter,

a receiver,

a polarization mode dispersion compensator which includes a polarization rotator, a polarizer and an optical electric power detector and which is provided between said transmitter and said receiver, and

an optical fiber path to connect said transmitter and said receiver via a polarization mode dispersion compensator and to transfer a given optical signal to said receiver from said transmitter,

whereby said optical signal is introduced into said polarization rotator to control said optical signal so that said output of said optical signal is maximized through rotation of a plane of polarization of said optical signal, and then, introduced into said polarizer to pass a linear polarized wave of said optical signal therethrough, and then, introduced into said optical electric power detector to detect said output of said optical signal.

11. The optical fiber communication system as defined in claim 10 , wherein said polarization rotator is a Faraday rotator.

12. The optical fiber communication system as defined in claim 10 , further comprising an amplifier provided between said transmitter and said receiver.

13. The optical fiber communication system as defined in claim 12 , wherein said amplifier is a rare earth metal doped optical fiber amplifier.

14. An optical fiber communication system, comprising:

a transmitter,

a receiver,

a plurality of polarization mode dispersion compensators each of which includes a polarization rotator, a polarizer and an optical electric power detector and is provided between said transmitter and said receiver, and

an optical fiber path to connect said transmitter and said receiver via a polarization mode dispersion compensator and to transfer a given optical signal to said receiver from said transmitter,

whereby said optical signal is introduced into said polarization rotator to control said optical signal so that said output of said optical signal is maximized through rotation of a plane of polarization of said optical signal, and then, introduced into said polarizer to pass a linear polarized wave of said optical signal therethrough, and then, introduced into said optical electric power detector to detect said output of said optical signal.

15. The optical fiber communication system as defined in claim 14 , wherein said polarization rotator is a Faraday rotator.

16. The optical fiber communication system as defined in claim 14 , further comprising an amplifier provided between said transmitter and said receiver.

17. The optical fiber communication system as defined in claim 16 , wherein said amplifier is a rare earth metal doped optical fiber amplifier.

Assignments (5)
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE PATENT NUMBERS 10342096;10671117; 10716375; 10716376;10795407;10795408; AND 10827591 PREVIOUSLY RECORDED AT REEL: 58314 FRAME: 657. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Feb 29, 2024
From: RAKUTEN, INC.
To: RAKUTEN GROUP, INC.
Reel/Frame 068066/0103 →
CHANGE OF NAME Recorded Dec 6, 2021
From: RAKUTEN, INC.
To: RAKUTEN GROUP, INC.
Reel/Frame 058314/0657 →
CHANGE OF ADDRESS Recorded Dec 17, 2015
From: RAKUTEN, INC.
To: RAKUTEN, INC.
Reel/Frame 037751/0006 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 22, 2013
From: OSAKA UNIVERSITY
To: RAKUTEN, INC.
Reel/Frame 029665/0956 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 14, 2004
From: MATSUMOTO, MASAYUKI; ALZETTA, DANIELE
To: OSAKA UNIVERSITY
Reel/Frame 014728/0297 →