IP Library Patent Application 16957812
Patent Application
App. No. 16/957,812

Laser Oscillator System Having Optical Element For Injection Seeding and Method of Manufacture

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Quick Facts
Patent No.
US None
App. No.
16/957,812
Abstract

The present application is directed to various architectures of a laser oscillator which include an optical element, reflective, refractive, or diffractive injection device for injection seeding and/or locking a laser oscillator.

Claims (47)

1 . A laser oscillator, comprising:

a laser cavity formed by at least one high reflectance mirror and at least one output coupler, the laser cavity defining a resonator axis;

at least one seed source configured to emit at least one seed signal to the laser cavity;

at least one seed aperture device having at least one reflective area and at least one transmission area formed therein, the at least one seed aperture positioned within the laser cavity wherein the at least one transmission area is positioned along the resonator axis of the laser cavity, the at least one reflective area of the at least one seed aperture device configured to reflect at least a portion of the at least one seed signal to form at least one reflected seed signal; and

at least one gain medium positioned within the laser cavity along the resonator axis, the at least one gain medium configured to be seeded by at least a portion of at least one seed signal and at least a portion of the at least one reflected seed signal and generate at least one intra-cavity signal in response thereto, the at least one intra-cavity signal traversing collinear to the resonator axis of the laser cavity, wherein at least a portion of the intra-cavity signal may be outputted from the laser cavity by the output coupler to form at least one output signal.

2 . The laser oscillator of claim 1 wherein the laser cavity is formed from one high reflectance mirror and one output coupler.

3 . The laser oscillator of claim 1 wherein the laser cavity is formed from multiple high reflectance mirrors and one output coupler.

4 . The laser oscillator of claim 1 wherein the at least one seed signal comprises a pulsed signal.

5 . The laser oscillator of claim 1 wherein the at least one seed signal comprises a continuous wave signal.

6 . The laser oscillator of claim 1 wherein the at least one gain medium comprises Nd:YVO.

7 . The laser oscillator of claim 1 wherein the at least one gain medium comprises at least one material selected from the group consisting of Yb:YAG, Yb:glass, Yb:CaF 2 , Yb:KGW, Yb:CALGO, Nd:YLF, Nd:YAG, Nd:LuAG, Nd:YAlO 3 , Nd:GdVO 4 , Nd:LiLuF 4 , Nd:GSGG, Ti:sapphire, Cr:LiCAF, Cr:LiSAF, Cr:LiSCAF, Cr:LiSGaF, and Cr:GSGG.

8 . The laser oscillator of claim 1 further comprising at least one optical element positioned within the laser resonator.

9 . The laser oscillator of claim 8 wherein the at least one optical element comprises at least one of a modulator and a transducer.

10 . The laser oscillator of claim 8 wherein the at least one optical element is selected from the group consisting of mode apertures, sensors, dispersion compensation systems, pulsed stretchers, compressors, acousto-optical modulators, electro-optical modulators, mechanical modulators, Q-switch devices, collimators, homogenizers, lenses, filters, wave plates, and polarizers.

11 . A laser oscillator, comprising:

a laser cavity formed by a high reflectance mirror and an output coupler, the laser cavity defining a resonator axis;

at least one seed source configured to emit at least one seed signal to the laser cavity;

at least one seed aperture device having at least one reflective area and at least one transmission area formed therein, the at least one seed aperture positioned within the laser cavity wherein the at least one transmission area is positioned along the resonator axis of the laser cavity, the at least one reflective area of the at least one seed aperture device configured to reflect at least a portion of the at least one seed signal to form at least one reflected seed signal; and

at least one gain medium positioned within the laser cavity along the resonator axis, the at least one gain medium configured to be seeded by at least a portion of at least one seed signal and at least a portion of the at least one reflected seed signal and generate at least one intra-cavity signal in response thereto, the at least one intra-cavity signal traversing collinear to the resonator axis of the laser cavity, wherein at least a portion of the intra-cavity signal may be outputted from the laser cavity by the output coupler to form at least one output signal.

12 . The laser oscillator of claim 11 wherein the at least one seed signal comprises a pulsed signal.

13 . The laser oscillator of claim 11 wherein the at least one gain medium comprises Nd:YVO.

14 . The laser oscillator of claim 11 wherein the at least one gain medium comprises at least one material selected from the group consisting of Yb:YAG, Yb:glass, Yb:CaF 2 , Yb:KGW, Yb:CALGO, Nd:YLF, Nd:YAG, Nd:LuAG, Nd:YAlO 3 , Nd:GdVO 4 , Nd:LiLuF 4 , Nd:GSGG, Ti:sapphire, Cr:LiCAF, Cr:LiSAF, Cr:LiSCAF, Cr:LiSGaF, and Cr:GSGG.

15 . The laser oscillator of claim 11 further comprising at least one optical element positioned within the laser resonator.

16 . The laser oscillator of claim 15 wherein the at least one optical element comprises at least one of a modulator and a transducer.

17 . The laser oscillator of claim 15 wherein the at least one optical element is selected from the group consisting of mode apertures, sensors, dispersion compensation systems, pulsed stretchers, compressors, acousto-optical modulators, electro-optical modulators, mechanical modulators, Q-switch devices, collimators, homogenizers, lenses, filters, wave plates, and polarizers.

18 . A laser oscillator, comprising:

a laser cavity formed by multiple high reflectance mirrors and an output coupler, the laser cavity defining a resonator axis;

at least one seed source configured to emit at least one seed signal to the laser cavity;

at least one seed aperture device having at least one reflective area and at least one transmission area formed therein, the at least one seed aperture positioned within the laser cavity wherein the at least one transmission area is positioned along the resonator axis of the laser cavity, the at least one reflective area of the at least one seed aperture device configured to reflect at least a portion of the at least one seed signal to form at least one reflected seed signal; and

at least one gain medium positioned within the laser cavity along the resonator axis, the at least one gain medium configured to be seeded by at least a portion of at least one seed signal and at least a portion of the at least one reflected seed signal and generate at least one intra-cavity signal in response thereto, the at least one intra-cavity signal traversing collinear to the resonator axis of the laser cavity, wherein at least a portion of the intra-cavity signal may be outputted from the laser cavity by the output coupler to form at least one output signal.

19 . The laser oscillator of claim 18 wherein the at least one seed signal comprises a pulsed signal.

20 . The laser oscillator of claim 18 wherein the at least one gain medium comprises Nd:YVO.

21 . The laser oscillator of claim 18 wherein the at least one gain medium comprises at least one material selected from the group consisting of Yb:YAG, Yb:glass, Yb:CaF 2 , Yb:KGW, Yb:CALGO, Nd:YLF, Nd:YAG, Nd:LuAG, Nd:YAlO 3 , Nd:GdVO 4 , Nd:LiLuF 4 , Nd:GSGG, Ti:sapphire, Cr:LiCAF, Cr:LiSAF, Cr:LiSCAF, Cr:LiSGaF, and Cr:GSGG.

22 . The laser oscillator of claim 18 further comprising at least one optical element positioned within the laser resonator.

23 . The laser oscillator of claim 22 wherein the at least one optical element comprises at least one of a modulator and a transducer.

24 . The laser oscillator of claim 22 wherein the at least one optical element is selected from the group consisting of mode apertures, sensors, dispersion compensation systems, pulsed stretchers, compressors, acousto-optical modulators, electro-optical modulators, mechanical modulators, Q-switch devices, collimators, homogenizers, lenses, filters, wave plates, and polarizers.

25 . A laser oscillator, comprising:

a laser cavity formed by at least one high reflectance mirror and at least one output coupler, the laser cavity defining a resonator axis;

at least one seed source configured to emit at least one seed signal to the laser cavity;

at least one seed aperture device having at least one diffractive area defining and at least one transmission area formed therein, the at least one seed aperture positioned within the laser cavity wherein the at least one transmission area is positioned along the resonator axis of the laser cavity, the at least one diffractive area of the at least one seed aperture device configured to diffract at least a portion of the at least one seed signal to form at least one diffracted seed signal; and

at least one gain medium positioned within the laser cavity along the resonator axis, the at least one gain medium configured to be seeded by at least a portion of at least one seed signal and at least a portion of the at least one diffracted seed signal and generate at least one intra-cavity signal in response thereto, the at least one intra-cavity signal traversing collinear to the resonator axis of the laser cavity, wherein at least a portion of the intra-cavity signal may be outputted from the laser cavity by the output coupler to form at least one output signal.

26 . The laser oscillator of claim 25 wherein the at least one seed signal comprises a pulsed signal.

27 . The laser oscillator of claim 25 wherein the at least one gain medium comprises Nd:YVO.

28 . The laser oscillator of claim 25 wherein the at least one gain medium comprises at least one material selected from the group consisting of Yb:YAG, Yb:glass, Yb:CaF 2 , Yb:KGW, Yb:CALGO, Nd:YLF, Nd:YAG, Nd:LuAG, Nd:YAlO 3 , Nd:GdVO 4 , Nd:LiLuF 4 , Nd:GSGG, Ti:sapphire, Cr:LiCAF, Cr:LiSAF, Cr:LiSCAF, Cr:LiSGaF, and Cr:GSGG.

29 . The laser oscillator of claim 25 further comprising at least one optical element positioned within the laser resonator.

30 . The laser oscillator of claim 29 wherein the at least one optical element comprises at least one of a modulator and a transducer.

31 . The laser oscillator of claim 29 wherein the at least one optical element is selected from the group consisting of mode apertures, sensors, dispersion compensation systems, pulsed stretchers, compressors, acousto-optical modulators, electro-optical modulators, mechanical modulators, Q-switch devices, collimators, homogenizers, lenses, filters, wave plates, and polarizers.

Assignments (6)
RELEASE OF SECURITY INTEREST Recorded Aug 24, 2022
From: BARCLAYS BANK PLC
To: MKS INSTRUMENTS, INC.; NEWPORT CORPORATION; ELECTRO SCIENTIFIC INDUSTRIES, INC.
Reel/Frame 062739/0001 →
RELEASE OF SECURITY INTEREST Recorded Aug 24, 2022
From: BARCLAYS BANK PLC
To: MKS INSTRUMENTS, INC.; NEWPORT CORPORATION; ELECTRO SCIENTIFIC INDUSTRIES, INC.
Reel/Frame 063009/0001 →
SECURITY INTEREST Recorded Aug 19, 2022
From: MKS INSTRUMENTS, INC.; NEWPORT CORPORATION; ELECTRO SCIENTIFIC INDUSTRIES, INC.
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 061572/0069 →
PATENT SECURITY AGREEMENT Recorded Oct 13, 2020
From: NEWPORT CORPORATION; MKS INSTRUMENTS, INC.
To: BARCLAYS BANK PLC
Reel/Frame 054065/0445 →
PATENT SECURITY AGREEMENT Recorded Oct 13, 2020
From: NEWPORT CORPORATION; MKS INSTRUMENTS, INC.
To: BARCLAYS BANK PLC
Reel/Frame 054065/0493 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 25, 2020
From: MITTLER, KAY
To: NEWPORT CORPORATION
Reel/Frame 053036/0313 →