IP Library Granted Patent US 9,008,142
Granted Patent B2
US 9,008,142 · App. 13/555,107 · Granted Apr 14, 2015

System and method for optimization of coherence length of tunable laser sources

Inventors: Michael Minneman (Lafayette, CO); Jason Ensher (Lafayette, CO); Thomas Milner (Lafayette, CO)
Assignee: Insight Photonic Solutions, Inc.
H01S5/0652H01S5/06256H01S5/141H01S5/183
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Quick Facts
Patent No.
US 9,008,142
App. No.
13/555,107
Granted
Apr 14, 2015
Kind
B2
Abstract

A system and method for adjusting the coherence length of a tunable laser to optimize measurements and reduce artifacts. A tuning element of the laser system modulates, adjusts, or controls parameters associate with the tunable laser, such that the output wavelength of the tunable laser is modulated or adjusted over a wavelength range within a time interval. Modulation of the parameter has the effect of increasing a linewidth of the tunable laser.

Claims (39)

1. A laser system for decreasing a coherence length of a tunable laser, the laser system comprising:

the tunable laser;

one or more tuning elements adapted to modulate at least one parameter associated with the tunable laser over a period of time;

the parameter controlling an output wavelength of the tunable laser, wherein the parameter is modulated such that a linewidth of the tunable laser increases and a point spread function measured through a fiber optic component changes; and

the fiber optic component adapted to receive electromagnetic radiation output by the tunable laser, the fiber optic component comprising at least one spurious etalon;

wherein the parameter is modulated such that the output wavelength of the tunable laser changes by an amount larger than a free spectral range of the spurious etalon over an interval of time shorter than a measure time of the laser system.

2. The laser system of claim 1 , further comprising a processor adapted to provide a control input to the tuning elements directing the tuning elements to change one or more parameters.

3. The laser system of claim 1 , wherein modulation of the parameter changes at least one of wavelength, cavity length, and phase.

4. The laser system of claim 1 , wherein the tuning elements comprise at least one of a gain section, mirror section, and phase section.

5. The laser system of claim 1 , wherein the tunable laser comprises a vertical cavity surface emitting laser (VCSEL), the tuning elements comprise a tunable mirror exterior to the semiconductor laser, and the parameter comprises a mirror distance from a semiconductor.

6. The laser system of claim 5 , wherein the tuning elements generate an analog drive signal waveform and an analog modulation signal added to the analog drive signal, and the parameters comprise at least one of an external mirror position and an external mirror angle.

7. The laser system of claim 5 , wherein the parameters comprise at least one of external mirror position and external mirror angle, the tuning elements generate a digitized drive signal waveform and the tuning elements modulating the waveform value at each step above or below an equal optical frequency step interval.

8. The laser system of claim 1 , wherein the tuning elements comprise an external tuning mirror and the parameters comprise at least one of mirror position and mirror angle.

9. The laser system of claim 8 , wherein the external tuning mirror comprises a micro-electromechanical systems (MEMS) mirror.

10. A laser system for decreasing a coherence length of a tunable laser, the laser system comprising:

the tunable laser, wherein the tunable laser comprises a Vernier-Tuned Distributed Bragg Reflector (VTDBR);

one or more tuning elements adapted to modulate at least one parameter associated with the tunable laser over a period of time, wherein:

the tuning elements comprise at least one of a gain section, mirror section, and phase section; and

the at least one parameter includes current supplied to the VTDBR and controls an output wavelength of the tunable laser;

a processor configured to provide control input to the one or more tuning elements for modulating the current supplied to the VTDBR in order to change an optical frequency of the VTDBR above and/or below an equal optical frequency interval per unit time such that a linewidth of the tunable laser increases and a point spread function measured through an optical system changes.

11. The laser system of claim 10 , wherein the parameters comprise at least one of a phase current, a front mirror current, and a back mirror current.

12. The laser system of claim 10 , wherein the tunable laser is a Super Structure Distributed Bragg Reflector laser.

13. The laser system of claim 10 , wherein the tunable laser is a Sampled-Grating Distributed Bragg Reflector laser.

14. A method of decreasing a coherence length of a tunable laser outputting electromagnetic to a fiber optic component including at least one spurious etalon, the method comprising:

modulating a parameter associated with the tunable laser over a period of time;

selecting the parameter to control an output wavelength of the tunable laser; and

modulating the parameter such that a linewidth of the tunable laser increases, a point spread function measured through the fiber optic component changes, and the output wavelength of the tunable laser changes by an amount larger than a free spectral range of the spurious etalon over an interval of time shorter than a measure time of the laser system.

15. The method of claim 14 , wherein modulation of the parameter changes at least one of wavelength, cavity length, and phase.

16. The method of claim 14 , wherein the parameters comprise at least one of a phase current, a front mirror current, and a back mirror current.

17. The method of claim 14 , wherein the parameter comprises a mirror distance from a semiconductor.

18. The method of claim 14 , wherein the parameters comprise at least one of an external mirror position and an external mirror angle.

19. A method of decreasing a coherence length of a tunable laser comprising a Vernier-Tuned Distributed Bragg Reflector (VTDBR) having tuning elements comprising at least one of a gain section, mirror section, and phase section, the tunable laser outputting electromagnetic to a fiber optic component, the method comprising:

modulating at least one parameter associated with the tunable laser over a period of time, wherein:

the at least one parameter is modulated by controlling input to the one or more tuning elements;

the at least one parameter includes current supplied to the VTDBR and controls an output wavelength of the tunable laser;

modulating the at least one parameter includes:

selecting the at least one parameter to control an output wavelength of the tunable laser; and

controlling input to the one or more tuning elements for modulating the current supplied to the VTDBR in order to change an optical frequency of the VTDBR above and/or below an equal optical frequency interval per unit time such that a linewidth of the tunable laser increases and a point spread function measured through the fiber optic component changes.

20. The laser system of claim 10 , wherein the tunable laser is a swept-wavelength laser.

Assignments (6)
SECURITY INTEREST Recorded Jan 31, 2023
From: INSIGHT PHOTONIC SOLUTIONS, INC.; INSIGHT LIDAR
To: SAXUM COMPANY, RLLLP
Reel/Frame 062540/0894 →
RELEASE OF SECURITY INTEREST Recorded Nov 26, 2019
From: DEEPTECH DISRUPTIVE GROWTH INVESTMENTS LTD
To: INSIGHT PHOTONIC SOLUTIONS, INC.
Reel/Frame 051115/0785 →
SECURITY INTEREST Recorded Aug 19, 2019
From: INSIGHT PHOTONIC SOLUTIONS, INC.
To: WAYMO LLC
Reel/Frame 050091/0099 →
SECURITY INTEREST Recorded Sep 25, 2018
From: INSIGHT PHOTONIC SOLUTIONS, INC.
To: SAXUM COMPANY, RLLLP
Reel/Frame 046956/0864 →
SECURITY INTEREST Recorded Jul 30, 2018
From: INSIGHT PHOTONIC SOLUTIONS, INC.
To: DEEPTECH DISRUPTIVE GROWTH INVESTMENTS LTD
Reel/Frame 046655/0554 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 22, 2013
From: MINNEMAN, MICHAEL; ENSHER, JASON; MILNER, THOMAS
To: INSIGHT PHOTONIC SOLUTIONS, INC.
Reel/Frame 030845/0153 →
Continuity (2)
Provisional Application 61510782 · Jul 22, 2011
Related Publication 20130044771A1 · Feb 21, 2013