IP Library › Granted Patent US 11,719,993
Granted Patent B2
US 11,719,993 · App. 17/415,090 · Granted Aug 8, 2023

High power laser converter based on patterned SRB4B07 or PBB407 crystal

Inventors: Valentin Gapontsev (Oxford, MA); Aleksander Cherepakhin (Oxford, MA); Anatolii Zamkov (Oxford, MA); Nikolay Evtikhiev (Oxford, MA); Dan Perlov (Oxford, MA); Aleksander Zaytsev (Oxford, MA); Andrey Sadovskiy (Oxford, MA); Nikita Radionov (Oxford, MA)
Assignee: IPG PHOTONICS CORPORATION
G02F1/3551G02F1/3501G02F1/353G02F1/354G02F1/355G02F1/3558G02F1/37G02F1/3775G02F1/39H01S3/0092H01S3/109H01S3/11H01S3/2308
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Quick Facts
Patent No.
US 11,719,993
App. No.
17/415,090
Granted
Aug 8, 2023
Kind
B2
Abstract

The disclosed laser system is configured with a laser source outputting light at a fundamental frequency. The output light is incident on a frequency converter operative to convert the fundamental frequency to a higher harmonic including at least one frequency converting stage. The frequency converter is based on a SrB 4 O 7 (SBO) or PbB 4 O 7 (PBO) nonlinear crystal configured with a plurality of domains. The domains have periodically alternating polarity of the crystal axis enabling a QPM use and formed with each with highly parallel walls which deviate from one another less than 1 micron over a 10 mm distance.

Claims (13)

1. A laser system, comprising:

a laser source outputting light at a fundamental frequency; and

a frequency converter operative to convert the fundamental frequency into a higher harmonic and including at least one frequency converting stage which is based on a Strontium Tetraborate SrB 4 O 7 (SBO) or Lead Tetraborate PbB 4 O 7 (PBO) crystal, wherein the SBO/PBO crystal is configured with a plurality of uniform domains with defining a periodic structure an having respective periodically alternating polarities of the crystal axis so as to enable quasi-phase-matching (QPM).

2. The laser system of claim 1 , wherein the SBO/PBO crystal is configured to generate the higher harmonic selected from the group consisting of a second harmonic, third harmonic, fourth harmonic, and fifth harmonic and a combination of the higher harmonics.

3. The laser system of claim 2 , wherein the SBO/PBO crystal outputs a single mode light at a wavelength of about 130 nm and average power of at les 10 W at the fourth harmonic.

4. The laser system of claim 1 , wherein the SBO/PBO crystal is configured to provide optical parametric interactions.

5. The laser system of claim 1 , wherein the SBO/PBO crystal has a thickness of each domain for VIS-DUV light ranges varying between 0.2 μm and about 20 μm, and a clear aperture with a diameter ranging from about 1 mm to about 5 cm.

6. The laser system of claim 1 , wherein the laser source includes a laser system operating in a continuous wave (CW), quasi-continuous wave (QCW) or pulsed regime.

7. The laser system of claim 6 , wherein the laser source includes a solid-state laser selected from the group consisting of a fiber laser, yttrium aluminum glass (YAG) and disk laser, the solid state laser being configured with a gain medium doped with light emitting dopants, which are selected from rare-earth elements, and outputting light in a 1 to 2 μm wavelength range.

8. The laser system of claim 6 , wherein the laser source has a master-oscillator (MO) power amplifier (PA) configuration.

9. The laser system of claim wherein 8 , the laser source outputs a train of pulses in a nanosecond-picosecond pulse duration range.

10. The laser system of claim 1 , wherein the frequency converter includes a single, monolithic slab of SBO/PBO crystal formed with two different domain periods, wherein light at the fundamental frequency propagates along a path through the slab which has an upstream end thereof provided with the period for a second harmonic generation (SHG) and a downstream end of the slab having the period for the higher harmonic.

11. The laser system of claim 1 , wherein the uniform domains have highly parallel walls deviating from one another less than 1 μm over a 10 mm distance.

Continuity (2)
Provisional Application 62781386 · Dec 18, 2018
Related Publication 20220066283A1 · Mar 3, 2022
Cited By (1)
US 12,717,209