IP Library Granted Patent US 10,205,296
Granted Patent B2
US 10,205,296 · App. 15/616,270 · Granted Feb 12, 2019

Swept light source and method for controlling the same

Inventors: Seiji Toyoda (Atsugi, JP); Yuzo Sasaki (Atsugi, JP); Takashi Sakamoto (Atsugi, JP); Joji Yamaguchi (Atsugi, JP); Tadashi Sakamoto (Atsugi, JP); Koei Yamamoto (Hamamatsu, JP); Masatoshi Fujimoto (Hamamatsu, JP); Mahiro Yamada (Hamamatsu, JP); Shogo Yagi (Kawasaki, JP); Yukihiko Ushiyama (Kawasaki, JP); Eiichi Sugai (Kawasaki, JP); Koji Yoneyama (Kawasaki, JP); Kazuo Fujiura (Kawasaki, JP)
Assignees: NIPPON TELEGRAPH AND TELEPHONE CORPORATION; HAMAMATSU PHOTONICS K.K.; NTT Advanced Technology Corporation
H01S3/1075G01B9/02004G01B9/02091H01S3/08009H01S3/107H01S5/143H01S5/06216H01S5/141
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Quick Facts
Patent No.
US 10,205,296
App. No.
15/616,270
Granted
Feb 12, 2019
Kind
B2
Abstract

Provided is a swept light source including one end surface coupled to a wavelength filter constituted of a diffraction grating and an end mirror via a light deflector and another end surface including a gain medium facing an output coupling mirror and which configures a laser cavity between the end mirror and the output coupling mirror, wherein a drive voltage having an AC voltage on which a DC bias voltage is superimposed is output from a control voltage source of the light deflector to an electrode pair of an electro-optic crystal, light is radiated from a light emitter to the electro-optic crystal, and incident light from the gain medium incident along an optical axis perpendicular to a direction of an electric field formed by the control voltage is deflected in a direction parallel to the electric field, so that wavelength sweeping is performed.

Claims (33)

1. A swept light source which includes one end surface coupled to a wavelength filter having a diffraction grating and an end mirror via a light deflector and another end surface including a gain medium facing an output coupling mirror and which configures a laser cavity between the end mirror and the output coupling mirror,

wherein the light deflector includes

an electro-optic crystal;

at least one electrode pair formed on opposing surfaces of the electro-optic crystal;

a control voltage source configured to output a control voltage for forming an electric field within the electro-optic crystal via the electrode pair; and

a light emitter configured to radiate light to the electro-optic crystal, and

wherein the control voltage source outputs a drive voltage having an AC voltage on which a DC bias voltage is superimposed to the electrode pair,

the light emitter radiates light to the electro-optic crystal simultaneously with outputting the drive voltage, and

incident light from the gain medium incident along an optical axis perpendicular to a direction of the electric field formed by the control voltage is deflected in a direction parallel to the electric field, so that wavelength sweeping is performed.

2. The swept light source according to claim 1 , wherein the light emitter radiates the light to the electro-optic crystal only during a cycle which is half of a cycle of the AC voltage in a waveform of the AC voltage of the control voltage output from the control voltage source.

3. The swept light source according to claim 1 , wherein the light emitter radiates pulsed light to the electro-optic crystal at fixed time intervals simultaneously with output of the drive voltage from the control voltage source to the electrode pair.

4. The swept light source according to claim 1 , wherein a wavelength of light radiated from the light emitter is shorter than a wavelength of the incident light.

5. The swept light source according to claim 1 , wherein the electro-optic crystal is either a KTN (KTa 1-x Nb x O 3 (0<x<1)) crystal or a KLTN (K 1-y Li y Ta 1-x Nb x O 3 ) (0<x<1 and 0<y<1)) crystal.

6. A swept light source which includes one end surface coupled to a wavelength filter having a diffraction grating via a light deflector and another end surface including a gain medium facing an output coupling mirror and which configures a laser cavity between the diffraction grating and the output coupling mirror,

wherein the light deflector includes

an electro-optic crystal;

at least one electrode pair formed on opposing surfaces of the electro-optic crystal;

a control voltage source configured to output a control voltage for forming an electric field within the electro-optic crystal via the electrode pair; and

a light emitter configured to radiate light to the electro-optic crystal, and

wherein the control voltage source outputs a drive voltage having an AC voltage on which a DC bias voltage is superimposed to the electrode pair,

the light emitter radiates light to the electro-optic crystal simultaneously with outputting the drive voltage, and

incident light from the gain medium incident along an optical axis perpendicular to a direction of the electric field formed by the control voltage is deflected in a direction parallel to the electric field, so that wavelength sweeping is performed.

7. The swept light source according to claim 6 , wherein the light emitter radiates the light to the electro-optic crystal only during a cycle which is half of a cycle of the AC voltage in a waveform of the AC voltage of the control voltage output from the control voltage source.

8. The swept light source according to claim 6 , wherein the light emitter radiates pulsed light to the electro-optic crystal at fixed time intervals simultaneously with output of the drive voltage from the control voltage source to the electrode pair.

9. The swept light source according to claim 6 , wherein a wavelength of light radiated from the light emitter is shorter than a wavelength of the incident light.

10. The swept light source according to claim 6 , wherein the electro-optic crystal is either a KTN (KTa 1-x Nb x O 3 (0<x<1)) crystal or a KLTN (K 1-y Li y Ta 1-x Nb x O 3 ) (0<x<1 and 0<y<1)) crystal.

11. A method for controlling a swept light source which includes one end surface coupled to a wavelength filter via a light deflector and another end surface including a gain medium facing an output coupling mirror and which configures a laser cavity between the wavelength filter and the output coupling mirror, wherein the light deflector includes an electro-optic crystal; at least one electrode pair formed on opposing surfaces of the electro-optic crystal; a control voltage source configured to output a control voltage for forming an electric field within the electro-optic crystal via the electrode pair; and a light emitter configured to radiate light to the electro-optic crystal, the method comprising:

injecting electrons into the electro-optic crystal by outputting a drive voltage having an AC voltage on which a DC bias voltage is superimposed from the control voltage source to the electrode pair;

varying an amount of charge injected into the electro-optic crystal by radiating light from the light emitter to the electro-optic crystal and exciting electrons trapped in a trap of the electro-optic crystal; and

obtaining a desired deflection property by adjusting the drive voltage from the control voltage source and a light radiation time from the light emitter,

wherein the control voltage source outputs a drive voltage having an AC voltage on which a DC bias voltage is superimposed to the electrode pair,

the light emitter radiates light to the electro-optic crystal simultaneously with outputting the drive voltage, and

incident light from the gain medium incident along an optical axis perpendicular to a direction of the electric field formed by the control voltage is deflected in a direction parallel to the electric field, so that wavelength sweeping is performed.

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE THIRTEENTH ASSIGNORS EXECUTION DATE PREVIOUSLY RECORDED AT REEL: 043406 FRAME: 0806. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT . Recorded Nov 9, 2017
From: TOYODA, SEIJI; SASAKI, YUZO; SAKAMOTO, TAKASHI; YAMAGUCHI, JOJI; SAKAMOTO, TADASHI; YAMAMOTO, KOEI; FUJIMOTO, MASATOSHI; YAMADA, MAHIRO; YAGI, SHOGO; USHIYAMA, YUKIHIKO; SUGAI, EIICHI; YONEYAMA, KOJI; FUJIURA, KAZUO
To: NIPPON TELEGRAPH AND TELEPHONE CORPORATION; HAMAMATSU PHOTONICS K.K.; NTT ADVANCED TECHNOLOGY CORPORATION
Reel/Frame 044415/0762 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 25, 2017
From: TOYODA, SEIJI; SASAKI, YUZO; SAKAMOTO, TAKASHI; YAMAGUCHI, JOJI; SAKAMOTO, TADASHI; YAMAMOTO, KOEI; FUJIMOTO, MASATOSHI; YAMADA, MAHIRO; YAGI, SHOGO; USHIYAMA, YUKIHIKO; SUGAI, EIICHI; YONEYAMA, KOJI; FUJIURA, KAZUO
To: NIPPON TELEGRAPH AND TELEPHONE CORPORATION; HAMAMATSU PHOTONICS K.K.; NTT ADVANCED TECHNOLOGY CORPORATION
Reel/Frame 043406/0806 →
Priority Claims (1)
JP 2016-114654 · Jun 8, 2016 · national
Continuity (1)
Related Publication 20170358899A1 · Dec 14, 2017
Cited By (1)
US 12,504,666