IP Library Granted Patent US 7,573,919
Granted Patent B2
US 7,573,919 · App. 10/573,895 · Granted Aug 11, 2009

Wavelength control of an external-cavity tuneable laser

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Quick Facts
Patent No.
US 7,573,919
App. No.
10/573,895
Granted
Aug 11, 2009
Kind
B2
Abstract

A method of controlling an external-cavity tuneable laser which has a wavelength-elective tuneable mirror, in which wavelength selectivity is achieved by an electrical signal provided by an alternating voltage. The tuneable mirror has a liquid crystal material, a diffraction grating and a planar waveguide optically interacting with the grating. The diffraction grating and the waveguide form a resonant structure that reflects only a selected resonance wavelength from among all the other wavelengths impinging thereon. Depending on the amplitude of the voltage applied to the tunable mirror, the tuneable mirror reflects radiation only at a given wavelength. The lasing output wavelength of the laser is selected to correspond to the resonance wavelength of the tuneable mirror. Accurate selection of the emission wavelength (frequency) of the tuneable laser by the tuneable mirror can be derived from the analysis of the signal modulation induced by the AC voltage applied to the tuneable mirror.

Claims (20)

1. A method for selecting the emission wavelength of a tuneable laser having an external-cavity defining a plurality of cavity modes, wherein selecting occurs by means of a tuneable mirror that comprises a diffraction grating and a planar waveguide optically interacting with said diffraction grating, the diffraction grating and the planar waveguide forming a resonant structure, the tuneable mirror further comprising a light transmissive material having an index of refraction that varies in response to an electric field applied to the light transmissive material, making the tuneable mirror electrically tuneable, comprising the steps of:

emitting a light beam by a gain medium to the external cavity;

applying an alternating voltage of an amplitude to the light transmissive material of the tuneable mirror at a frequency f A , thereby selecting a resonance wavelength of the resonance structure and thereby modulating in amplitude the light beam reflected or transmitted by the tuneable mirror; and

aligning the resonance wavelength of the tuneable mirror to at least one of the cavity modes by analysing the modulated component of the light beam reflected or transmitted by the tuneable mirror,

wherein the step of aligning the resonance wavelength is carried out by changing the amplitude of the voltage applied to the tuneable mirror so as to minimise the amplitude of the modulated component of the light beam either reflected by the tuneable mirror or transmitted through the tuneable mirror.

2. The method as in claim 1 , wherein the amplitude modulation of the light beam reflected by or transmitted through the tuneable mirror is controlled to be not larger than ±2%.

3. The method as in claim 2 , wherein the amplitude modulation of the light beam reflected by or transmitted through the tuneable mirror is controlled to be not larger than ±1%.

4. The method as in claim 1 , wherein the analysed modulated component is at frequency f A .

5. The method as in claim 1 , wherein the analysed modulated component is at frequency 2f A .

6. The method as in claim 1 , wherein selecting by means of the tuneable mirror comprises introducing a filtering element between the gain medium and the tuneable mirror, a spectrally selective loss element defining at least a pass band comprising the at least one of the cavity modes.

7. The method as in claim 6 , wherein the spectrally selective loss element is a grid element defining a plurality of pass bands substantially aligned with corresponding channels of a wavelength grid.

8. The method as in claim 6 , further comprising the step of aligning a pass band of the spectrally selective loss element to the at least one of the cavity modes by adjusting the injection current of the gain medium so as to maximize the laser output power.

9. The method as in claim 8 , wherein the step of aligning a pass band of the spectrally selective loss element to the at least one of the cavity modes and the step of aligning the resonance wavelength of the tuneable mirror to the at least one of the cavity modes are carried out sequentially.

10. A tuneable laser module configured to emit output radiation on a single longitudinal mode at a laser emission wavelength, comprising:

an external cavity defining a plurality of cavity modes;

a gain medium to emit a light beam into the external cavity;

a tuneable mirror comprising a diffraction grating and a planar waveguide optically interacting with said diffraction grating, the diffraction grating and the planar waveguide forming a resonant structure, the tuneable mirror further comprising a light transmissive material having an index of refraction that varies in response to an electric field applied to the light transmissive material, making the tuneable mirror electrically tuneable in response to an alternating voltage of an amplitude and frequency, so as to select a resonance wavelength and so as to modulate in amplitude the light beam reflected or transmitted by the tuneable mirror; and

a controlling device to align the resonance wavelength of the tuneable mirror to at least one of the cavity modes by analysing a modulated component of the light beam reflected or transmitted by the tuneable mirror,

wherein the controlling device carries out a function of analysing the modulated component of the light beam either reflected by the tuneable mirror or transmitted through the tuneable mirror by changing the amplitude of the voltage applied to the tuneable mirror so as to minimise the amplitude of the modulated component of the light beam.

11. The tuneable laser module according to claim 10 , wherein the controlling device is included in an electronic circuit card.

Assignments (8)
CHANGE OF NAME Recorded Oct 5, 2017
From: GOOGLE INC.
To: GOOGLE LLC
Reel/Frame 044127/0735 →
RELEASE OF SECURITY INTEREST Recorded Feb 22, 2012
From: ROYAL BANK OF CANADA
To: MOSAID TECHNOLOGIES INCORPORATED; 658868 N.B. INC.; 658276 N.B. LTD.
Reel/Frame 027746/0210 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2012
From: MOSAID TECHNOLOGIES INC.
To: GOOGLE INC.
Reel/Frame 027636/0834 →
U.S. INTELLECTUAL PROPERTY SECURITY AGREEMENT (FOR NON-U.S. GRANTORS) - SHORT FORM Recorded Jan 10, 2012
From: 658276 N.B. LTD.; 658868 N.B. INC.; MOSAID TECHNOLOGIES INCORPORATED
To: ROYAL BANK OF CANADA
Reel/Frame 027512/0196 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2011
From: PGT PHOTONICS S.P.A.
To: MOSAID TECHNOLOGIES INCORPORATED
Reel/Frame 027394/0789 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2011
From: TELECOM ITALIA S.P.A.
To: MOSAID TECHNOLOGIES INCORPORATED
Reel/Frame 027393/0387 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 2, 2009
From: PIRELLI & C. S.P.A.
To: PGT PHOTONICS S.P.A.
Reel/Frame 022909/0332 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 24, 2007
From: CATTELAN, SUSANNA MARIA; ROMANO, ANDREA; DE DONNO, MARCO; PIANCIOLA, AURELIO
To: PIRELLI & C. S.P.A.; TELECOM ITALIA S.P.A.
Reel/Frame 019226/0307 →