IP Library Granted Patent US 9,513,423
Granted Patent B2
US 9,513,423 · App. 13/886,821 · Granted Dec 6, 2016

Methods and apparatus for power-equalized optical frequency comb generation

Inventors: Ping Piu Kuo (San Diego, CA); Yauheni Mysilvets (San Diego, CA)
Assignees: John R. Marciante; Stojan Radic; Nikola Alic
G02B6/00G02F1/353G02F1/383G02F1/39G02B6/02247G02F2201/16G02F2203/26G02F2203/56
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,513,423
App. No.
13/886,821
Granted
Dec 6, 2016
Kind
B2
Abstract

An optical device for generating a frequency comb includes an optical source and a first waveguide comprising a nonlinear optical medium operable to mix at least two input optical waves to generate a plurality of first optical waves. The optical device also includes a second waveguide concatenated to the first waveguide and characterized by a first dispersion characteristics and operable to compress the waveforms of the plurality of first optical waves and to reduce a frequency chirp introduced by the first waveguide. The optical device additionally includes a third waveguide concatenated to the second waveguide. The third waveguide comprises a nonlinear optical medium and is operable to mix the plurality of first optical waves to generate a plurality of second optical waves and to increase a total number of second optical waves with respect to a total number of first optical waves.

Claims (58)

1. An optical device for generating a frequency comb, the optical device comprising:

an optical source operable to provide at least two input optical waves characterized by a first input frequency and a second input frequency, respectively, wherein the first input frequency and the second input frequency are separated by a frequency spacing;

a first waveguide comprising a nonlinear optical medium characterized by:

a nonlinear optical response; and

operable to mix the at least two input optical waves to generate a plurality of first optical waves characterized by respective first frequencies separated from each other by the frequency spacing, wherein each input optical wave has a constant amplitude and a constant frequency;

a dispersive element concatenated to the first waveguide, wherein the dispersive element is characterized by a first dispersion characteristics such that the dispersive element is operable to compress the waveforms of the plurality of first optical waves; and

a second waveguide concatenated to the dispersive element, wherein:

the second waveguide comprises a nonlinear optical medium operable to mix the plurality of first optical waves to generate a plurality of second optical waves characterized by respective second frequencies separated from each other by the frequency spacing, after the plurality of first optical waves are compressed by the dispersive element;

the second waveguide has a physical length based on a width of a pulse of the plurality of first optical waves entering the second waveguide; and

the second waveguide is a dispersion-flattened waveguide.

2. The optical device of claim 1 wherein the plurality of first optical waves is characterized by a frequency chirp, and the dispersive element is operable to reduce the frequency chirp.

3. The optical device of claim 1 wherein:

the physical length of the second waveguide is greater than a length corresponding to onset of wave breaking in the second waveguide.

4. The optical device of claim 1 wherein:

the second waveguide is characterized by a chromatic dispersion parameter D; and

the chromatic dispersion parameter D has a value such that the dispersive element is operable to reduce a phase modulation introduced by the first waveguide.

5. The optical device of claim 1 , wherein the first waveguide has a nonlinear coefficient greater than 20/W/km.

6. The optical device of claim 5 wherein the second waveguide is characterized by a second dispersion characteristics such that the second waveguide is operable to increase a total number of second optical waves with respect to a total number of first optical waves.

7. The optical device of claim 5 wherein the second waveguide is characterized by a dispersion slope that is not greater than about 10 ps/km-nm 2 within a spectral bandwidth of the plurality of second optical waves.

8. The optical device of claim 5 wherein the second waveguide is characterized by a unit-length chromatic dispersion that is not greater than about 2000 ps/km-nm within a spectral span of the frequency comb.

9. The optical device of claim 5 wherein each of the first waveguide and the second waveguide is characterized by a unit-length dispersion that is not greater than about 2000 ps/km-nm within a spectral bandwidth of the plurality of first optical waves and a spectral bandwidth of the plurality of second optical waves, respectively.

10. The optical device of claim 1 , wherein the dispersive element is a first dispersive element, the optical device further comprising:

a third waveguide concatenated to the first dispersive element and to a second dispersive element, wherein the third waveguide comprises a nonlinear optical medium and is operable to mix optical waves to generate additional optical waves separated from each other by the frequency spacing; and

the second dispersive element concatenated to the third waveguide and to the second waveguide, wherein:

the second dispersive element is characterized by a second dispersion characteristics such that the second dispersive element is operable to reduce a frequency chirp of the plurality of first optical waves introduced by the third waveguide; and

the third waveguide and the second dispersive element are between the first dispersive element and the second waveguide.

11. A method of generating a frequency comb comprising:

providing at least two input optical waves characterized by respective input frequencies separated from each other by a frequency spacing;

mixing, via a first waveguide, the at least two input optical waves to provide a plurality of first optical waves characterized by respective first frequencies separated from each other by the frequency spacing, wherein each input optical wave has a constant amplitude and a constant frequency

compressing, via a dispersive element concatenated to the first waveguide, the plurality of first optical waves to provide a plurality of first compressed optical waves; and

mixing, via a second waveguide concatenated to the dispersive element, the plurality of first optical waves to generate a plurality of second optical waves characterized by respective second frequencies separated from each other by the frequency spacing, after the plurality of first optical waves are compressed by the dispersive element, wherein:

the second waveguide is a dispersion-flattened waveguide; and

the second waveguide has a physical length based on a width of a pulse of the plurality of first optical waves entering the second waveguide.

12. The method of claim 11 wherein the first waveguide introduces a frequency chirp in the plurality of first optical waves, and the dispersive element is characterized by a first dispersion characteristics such that the dispersive element reduces the frequency chirp introduced by the first waveguide.

13. The method of claim 11 wherein first waveguide has a nonlinear coefficient greater than 20/W/km.

14. The method of claim 11 wherein the second waveguide is characterized by a second dispersion characteristics that increases a total number of second optical waves in comparison to a total number of first optical waves at an output of the first waveguide.

15. The method of claim 11 comprising:

mixing, via a third waveguide concatenated to the dispersive element, wherein the dispersive element is a first dispersive element, and to a second dispersive element, the first plurality of optical waves to generate additional optical waves separated by the frequency spacing, wherein the third waveguide and the second dispersive element are between the first dispersive element and the second waveguide; and

compressing, via a second dispersive element concatenated to the third waveguide and to the second waveguide, optical waves from the third waveguide, wherein the second dispersive element is characterized by dispersion characteristics such that the second dispersive element reduces a frequency chirp introduced by the third waveguide.

16. An optical device for generating a frequency comb, the optical device comprising:

an optical source operable to provide at least two input optical waves characterized by a first input frequency and a second input frequency, respectively, wherein the first input frequency and the second input frequency are separated by a frequency spacing; and

a first waveguide comprising a nonlinear optical medium, wherein:

the nonlinear optical medium is characterized by a nonlinear optical response; and

the nonlinear optical medium is operable to mix the at least two input optical waves to generate a plurality of first optical waves characterized by respective first frequencies separated from each other by the frequency spacing, wherein each input optical wave has a constant amplitude and a constant frequency;

a dispersive element concatenated to the first waveguide; and

a second waveguide concatenated to the dispersive element, wherein:

the second waveguide comprises a nonlinear optical medium operable to mix the plurality of first optical waves to generate a plurality of second optical waves characterized by respective second frequencies separated from each other by the frequency spacing, after the plurality of first optical waves pass through the dispersive element;

the second waveguide has a physical length based on a width of a pulse of the plurality of first optical waves entering the second waveguide; and

the second waveguide is a dispersion-flattened waveguide.

17. The optical device of claim 16 , wherein the dispersive element is characterized by a first dispersion characteristics such that the dispersive element is operable to compress the waveforms of the plurality of first optical waves.

18. The optical device of claim 16 , wherein the second waveguide has a nonlinear coefficient greater than 20/W/km.

19. The optical device of claim 17 wherein:

the plurality of first optical waves is characterized by a frequency chirp;

the dispersive element is operable to reduce the frequency chirp introduced by the first waveguide; and

the second waveguide is characterized by a second dispersion characteristics such that the second waveguide is operable to increase a total number of second optical waves with respect to a total number of first optical waves.

20. The optical device of claim 16 further comprising:

a third waveguide, between the dispersive element and the second waveguide, configured to mix optical waves, wherein the dispersive element is a first dispersive element; and

a second dispersive element, between the third waveguide and the second waveguide, configured to compress optical waves.

Assignments (14)
NOTICE OF ASSIGNMENT OF EXCLUSIVE LICENSE AGREEMENT Recorded Jul 28, 2022
From: RAM PHOTONICS LLC; RAM PHOTONICS SP, INC.
To: RAYTHEON COMPANY
Reel/Frame 060992/0637 →
NOTICE OF ASSIGNMENT OF EXCLUSIVE LICENSE AGREEMENT Recorded Jun 13, 2022
From: MARCIANTE, JOHN R.; RADIC, STOJAN; ALIC, NIKOLA
To: ROSHMERE, INC.
Reel/Frame 060348/0190 →
LICENSE Recorded Oct 21, 2019
From: MARCIANTE, JOHN R.; ALIC, NIKOLA; RADIC, STOJAN
To: RAM PHOTONICS, LLC
Reel/Frame 050774/0338 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 29, 2016
From: ALIC, NIKOLA
To: ROSHMERE, INC.
Reel/Frame 040456/0189 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2016
From: RADIC, STOJAN
To: ROSHMERE, INC.
Reel/Frame 040048/0849 →
RELEASE OF SECURITY INTEREST Recorded Oct 18, 2016
From: MARCIANTE, JOHN R.; RADIC, STOJAN; ALIC, NIKOLA
To: RAM PHOTONICS, LLC
Reel/Frame 040049/0014 →
RELEASE OF SECURITY INTEREST Recorded Oct 18, 2016
From: KUO, PING PIU
To: MARCIANTE, JOHN R.
Reel/Frame 040415/0794 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2016
From: MARCIANTE, JOHN R.
To: ROSHMERE, INC.
Reel/Frame 040048/0746 →
SECURITY INTEREST Recorded Aug 22, 2016
From: MARCIANTE, JOHN R.
To: KUO, PING PIU
Reel/Frame 039494/0707 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 3, 2016
From: KUO, PING PIU; MYSLIVETS, YAUHENI
To: RAM PHOTONICS, LLC
Reel/Frame 039327/0813 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 1, 2016
From: RAM PHOTONICS, LLC
To: RADIC, STOJAN
Reel/Frame 039306/0711 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 1, 2016
From: RAM PHOTONICS, LLC
To: ALIC, NIKOLA
Reel/Frame 039306/0810 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 1, 2016
From: RAM PHOTONICS, LLC
To: MARCIANTE, JOHN R.
Reel/Frame 039305/0923 →
SECURITY INTEREST Recorded Jul 25, 2016
From: RAM PHOTONICS, LLC
To: MARCIANTE, JOHN R.; RADIC, STOJAN; ALIC, NIKOLA
Reel/Frame 039454/0255 →
Continuity (3)
Continuation 13725869 · Dec 21, 2012
Provisional Application 61700807 · Sep 13, 2012
Related Publication 20140178020A1 · Jun 26, 2014