IP Library Granted Patent US 11,360,396
Granted Patent B2
US 11,360,396 · App. 17/004,140 · Granted Jun 14, 2022

Mode control of photonic crystal fiber based broadband radiation sources

Inventors: Sebastian Thomas Bauerschmidt (Wendelstein, NL); Peter Maximilian Götz (Altdorf, DE); Patrick Sebastian Uebel (Marloffstein, DE); Ronald Franciscus Herman Hugers (Best, NL); Jan Adrianus Boer (Eindhoven, NL); Edwin Johannes Cornelis Bos (Dommelen, NL); Andreas Johannes Antonius Brouns (Eindhoven, NL); Vitaliy Prosyentsov (Helmond, NL); Paul William Scholtes-Van Eijk (Veldhoven, NL); Paulus Antonius Andreas Teunissen (Eindhoven, NL); Mahesh Upendra Ajgaonkar (Guildford, CT)
Assignees: ASML Netherlands B.V.; ASML Holding N.V.
G03F7/70625G01B11/27G01J1/4257G01M11/30G02B1/005G02B6/02G03F7/7065G03F7/70525
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 11,360,396
App. No.
17/004,140
Granted
Jun 14, 2022
Kind
B2
Abstract

A mode control system and method for controlling an output mode of a broadband radiation source including a photonic crystal fiber (PCF). The mode control system includes at least one detection unit configured to measure one or more parameters of radiation emitted from the broadband radiation source to generate measurement data, and a processing unit configured to evaluate mode purity of the radiation emitted from the broadband radiation source, from the measurement data. Based on the evaluation, the mode control system is configured to generate a control signal for optimization of one or more pump coupling conditions of the broadband radiation source. The one or more pump coupling conditions relate to the coupling of a pump laser beam with respect to a fiber core of the photonic crystal fiber.

Claims (30)

1. A mode control system comprising:

at least one detection unit configured to measure one or more parameters of radiation emitted from a broadband radiation source comprising a photonic crystal fiber (PCF), to generate measurement data; and

a processing unit configured to evaluate mode purity of the radiation emitted from the broadband radiation source, from the measurement data,

wherein based on the evaluation, the mode control system is configured to generate a control signal for optimization of one or more pump coupling conditions of the broadband radiation source, the one or more pump coupling conditions relating to the coupling of a pump laser beam with respect to a fiber core of the photonic crystal fiber.

2. The mode control system of claim 1 , wherein the one or more parameters of the radiation emitted from the broadband radiation source comprises one or more parameters indicative of mode purity of the broadband radiation source.

3. The mode control system of claim 1 , wherein the radiation emitted from the broadband radiation source detected by the at least one detection unit comprises output radiation emitted from an output end of the photonic crystal fiber.

4. The mode control system of claim 3 , further comprising a beamsplitter located to split a reference beam from output radiation emitted by the photonic crystal fiber, the radiation emitted from the broadband radiation source detected by the detection unit comprising the reference beam.

5. The mode control system of claim 1 , wherein the at least one detection unit comprises a spectrum measuring arrangement configured to measure one or more spectral parameter values of the radiation emitted from the broadband radiation source as the measurement data.

6. The mode control system of claim 1 , wherein the at least one detection unit comprises one or more bandpass filters, each of the one or more bandpass filters operable to select a respective spectral range of the radiation emitted from the broadband radiation source and an illumination measuring device configured to detect an illumination parameter indicative of power of the filtered radiation, the measurement data comprising, and/or being derived from, the illumination parameter indicative of power.

7. The mode control system of claim 5 , wherein the measurement data comprises a power spectral density or energy spectral density value in one or more spectral ranges, derived from one or more measured spectral parameter values.

8. The mode control system of claim 1 , wherein the at least one detection unit comprises a spatial filter operable to filter out higher order modes other than a fundamental mode from the radiation emitted from the broadband radiation source and an illumination measuring device operable to detect an illumination parameter indicative of power of the filtered radiation, the measurement data comprising and/or being derived from the illumination parameter indicative of power.

9. The mode control system of claim 1 , wherein the at least one detection unit comprises a beam shape and/or size measuring device configured to measure one or more beam characteristics of the radiation emitted from the broadband radiation source related to the shape and/or size of the beam, the measurement data comprising, and/or being derived from, the one or more beam characteristics of the radiation emitted from the broadband radiation source related to the shape and/or size of the beam.

10. The mode control system of claim 1 , configured such that the one or more parameters of radiation emitted from the broadband radiation source measured by the detection unit comprises leakage radiation emitted from the fiber cladding of the photonic crystal fiber.

11. The mode control system of claim 1 , further comprising one or more actuators to actuate movement of one or more components of the broadband radiation source, wherein the control signal is operable to control one or more of the one or more actuators.

12. The mode control system of claim 1 , wherein mode purity describes a ratio between the power in the fundamental transverse mode and the total output power.

13. A broadband radiation source device comprising:

a source of radiation; and

the mode control system of claim 1 .

14. A metrology device comprising:

a detector; and

the broadband radiation source device of claim 13 .

15. A method of mode control of a broadband radiation source comprising a photonic crystal fiber, the method comprising:

measuring one or more parameters of radiation emitted from the broadband radiation source to obtain measurement data;

evaluating mode purity of the radiation emitted from the broadband radiation source, from the measurement data; and

generating a control signal to optimize of one or more pump coupling conditions of the broadband radiation source, the one or more pump coupling conditions relating to the coupling of a pump laser beam with respect to a fiber core of the photonic crystal fiber.

16. The method of claim 15 , wherein the one or more parameters of the radiation emitted from the broadband radiation source comprises one or more parameters indicative of mode purity of the broadband radiation source.

17. The method of claim 15 , wherein the radiation emitted from the broadband radiation source that is measured comprises output radiation emitted from an output end of the photonic crystal fiber.

18. The method of claim 15 , wherein the measuring comprises measuring one or more spectral parameter values of the radiation emitted from the broadband radiation source as the measurement data.

19. The method of claim 15 , further comprising using one or more bandpass filters operable to select a respective spectral range of the radiation emitted from the broadband radiation source and the measuring comprises detecting an illumination parameter indicative of power of the filtered radiation, the measurement data comprising, and/or being derived from, the illumination parameter indicative of power.

20. The method of claim 15 , further comprising using a spatial filter to filter out higher order modes other than a fundamental mode from the radiation emitted from the broadband radiation source and the measuring comprises detecting an illumination parameter indicative of power of the filtered radiation, the measurement data comprising and/or being derived from the illumination parameter indicative of power.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 22, 2021
From: AJGAONKAR, MAHESH UPENDRA
To: ASML HOLDING N.V.
Reel/Frame 055663/0682 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 5, 2021
From: BAUERSCHMIDT, SEBASTIAN THOMAS; GÖTZ, PETER MAXIMILIAN; UEBEL, PATRICK SEBASTIAN; HUGERS, RONALD FRANCISCUS HERMAN; BOER, JAN ADRIANUS; BOS, EDWIN JOHANNES CORNELIS; BROUNS, ANDREAS JOHANNES ANTONIUS; PROSYENTSOV, VITALIY; SCHOLTES - VAN EIJK, PAUL WILLIAM; TEUNISSEN, PAULUS ANTONIUS ANDREAS
To: ASML NETHERLANDS B.V.
Reel/Frame 055510/0060 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 27, 2020
From: GÖTZ, PETER MAXIMILIAN; BAUERSCHMIDT, SEBASTIAN THOMAS; UEBEL, PATRICK SEBASTIAN; HUGERS, RONALD FRANCISCUS HERMAN; BOER, JAN ADRIANUS; BOS, EDWIN JOHANNES CORNELIS; BROUNS, ANDREAS JOHANNES ANTONIUS; PROSYENTSOV, VITALIY; SCHOLTES - VAN EIJK, PAUL WILLIAM; TEUNISSEN, PAULUS ANTONIUS ANDREAS
To: ASML NETHERLANDS B.V.
Reel/Frame 053616/0260 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 27, 2020
From: GÖTZ, PETER MAXIMILIAN; BAUERSCHMIDT, SEBASTIAN THOMAS; UEBEL, PATRICK SEBASTIAN; HUGERS, RONALD FRANCISCUS HERMAN; BOER, JAN ADRIANUS; BOS, EDWIN JOHANNES CORNELIS; BROUNS, ANDREAS JOHANNES ANTONIUS; PROSYENTSOV, VITALIY; SCHOLTES - VAN EIJK, PAUL WILLIAM; TEUNISSEN, PAULUS ANTONIUS ANDREAS
To: ASML NETHERLANDS B.V.
Reel/Frame 053616/0278 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 27, 2020
From: GÖTZ, PETER MAXIMILIAN; BAUERSCHMIDT, SEBASTIAN THOMAS; UEBEL, PATRICK SEBASTIAN
To: ASML NETHERLANDS B.V.
Reel/Frame 053616/0326 →
Priority Claims (4)
EP 19194974 · Sep 2, 2019 · regional
EP 19215183 · Dec 11, 2019 · regional
EP 20152635 · Jan 20, 2020 · regional
EP 20165824 · Mar 26, 2020 · regional
Continuity (1)
Related Publication 20210063894A1 · Mar 4, 2021
Cited By (18)
US 12,219,522 US 12,261,656 US 12,273,155 US 12,301,298 US 12,301,315 US 12,316,400 US 12,348,282 US 12,348,285 US 12,413,266 US 12,418,338 US 12,438,268 US 12,444,854 US 12,444,855 US 12,451,955 US 12,476,389 US 12,556,230 US 12,562,502 US 12,683,292