IP Library Granted Patent US 9,882,342
Granted Patent B2
US 9,882,342 · App. 15/094,288 · Granted Jan 30, 2018

Fiber delivery of short laser pulses

Inventors: Armin Zach (Windach, DE); Robert Herda (Munich, DE)
Assignee: Toptica Photonics AG
H01S3/108H01S3/0057H01S3/06725H01S3/10061H01S3/06712H01S2301/085H01S2302/02
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 9,882,342
App. No.
15/094,288
Granted
Jan 30, 2018
Kind
B2
Abstract

A method and system for delivering laser pulses achieves the delivery of high quality laser pulses at the location of an application. The method includes the steps of: generating laser pulses, amplifying the laser pulses, temporally stretching the amplified laser pulses, and propagating the amplified laser pulses through an optical delivery fiber of desired length, wherein the laser pulses are temporally compressed in the optical delivery fiber and wherein the laser pulses undergo nonlinear spectral broadening in the optical delivery fiber.

Claims (25)

1. Method for delivering laser pulses, comprising the steps of:

generating laser pulses,

amplifying the laser pulses,

propagating the amplified laser pulses through a section of highly nonlinear optical fiber having normal dispersion, wherein the laser pulses undergo nonlinear spectral broadening in the highly nonlinear optical fiber section, and wherein the width of the spectrum of the laser pulses is increased by the nonlinear spectral broadening by at least a factor of 1.2,

temporally stretching the spectrally broadened laser pulses, and

propagating the amplified laser pulses through an optical delivery fiber having a length of at least 2 meters, wherein the laser pulses are temporally compressed in the optical delivery fiber.

2. Method of claim 1 , wherein the pulse duration of the laser pulses at the end of the optical delivery fiber is less than 100 fs.

3. Method of claim 1 , wherein the pulse duration of the temporally stretched laser pulses is at least 1 ps.

4. Method of claim 1 , wherein the amplified laser pulses have a parabolic spectrum.

5. System for delivering laser pulses, comprising:

a laser source generating laser pulses;

an optical amplifier amplifying the laser pulses;

a section of highly nonlinear optical fiber having normal dispersion, wherein the amplified laser pulses are propagated through the section of highly nonlinear optical fiber, wherein the laser pulses undergo spectral broadening in the section of highly nonlinear optical fiber, and wherein the width of the spectrum of the laser pulses is increased by the nonlinear spectral broadening by at least a factor of 1.2;

an optical stretcher temporally stretching the amplified and spectrally broadened laser pulses; and

an optical delivery fiber having a length of at least 2 meters, wherein the stretched laser pulses are propagated through the optical deliver fiber, and wherein the laser pulses are temporally compressed in the optical delivery fiber.

6. System of claim 5 , wherein the optical amplifier is a parabolic amplifier.

7. System of claim 5 , wherein the optical stretcher comprises a section of dispersion compensating optical fiber.

8. System of claim 5 , wherein the optical delivery fiber comprises a section of single mode optical fiber having anomalous dispersion.

9. System of claim 5 , wherein the length of the optical delivery fiber is at least 5 meters.

10. System of claim 5 , wherein the wavelength of the laser pulses is between 1500 nm and 1600 nm.

11. System of claim 5 , wherein the optical delivery fiber comprises sections of different types of optical fibers.

12. System of claim 11 , wherein the optical delivery fiber comprises sections of increasing nonlinearity or decreasing dispersion in propagation direction.

13. System of claim 5 , wherein the optical stretcher and the optical delivery fiber are polarization maintaining.

14. System of claim 5 , wherein the optical delivery fiber is terminated by a nonlinear frequency-converting element.

15. System of claim 14 , wherein the nonlinear frequency-converting element is a Terahertz-radiation generating antenna.

Assignments (2)
CHANGE OF NAME Recorded Oct 28, 2025
From: TOPTICA PHOTONICS AG
To: TOPTICA PHOTONICS SE
Reel/Frame 073371/0624 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2016
From: ZACH, ARMIN; HERDA, ROBERT
To: TOPTICA PHOTONICS AG
Reel/Frame 038229/0822 →
Continuity (2)
Division 14624773 · Feb 18, 2015
Related Publication 20160240995A1 · Aug 18, 2016