IP Library Granted Patent US 12,444,899
Granted Patent B2
US 12,444,899 · App. 17/731,233 · Granted Oct 14, 2025

Method and apparatus for controlling a pulse repetition rate of a pulsed laser beam, and pulsed laser oscillator with stabilized pulse repetition rate

Inventors: Kemal Shafak (Hamburg, DE); Dai Anan (Hamburg, DE); Franz Xaver Kaertner (Hamburg, DE)
Assignees: Cycle GmbH; Deutsches Elektronen-Synchroton DESY
H01S3/10046H01S3/0602H01S3/1307H01S3/1305H01S3/136
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 12,444,899
App. No.
17/731,233
Granted
Oct 14, 2025
Kind
B2
Abstract

A method is disclosed for controlling a pulse repetition rate of pulsed laser beam 1 created by pulsed laser oscillator 100 , includes generating beam 1 by oscillator 100 , splitting beam 1 into first pulsed split beam 1 a and second pulsed split beam 1 b , time-delaying split beam 1 a relative to split beam 1 b by optical delay device 220 , generating timing baseband signal Sc including a timing jitter of the pulse repetition rate based on split beam 1 a and second split beam 1 b by timing detector device 230 , generating feedback signal Sf based on timing baseband signal Sc, and applying feedback signal Sf on oscillator 100 and controlling the pulse repetition rate of beam 1 based on the feedback signal Sf. Furthermore, repetition rate control apparatus 200 for controlling a pulse repetition rate of pulsed laser oscillator 100 and pulsed laser oscillator 100 , comprising repetition rate control apparatus 200 are described.

Claims (78)

1. A method for controlling a pulse repetition rate of a pulsed laser beam created by a pulsed laser oscillator, comprising the steps of

generating the pulsed laser beam by the pulsed laser oscillator,

splitting the pulsed laser beam into a first pulsed split beam and a second pulsed split beam,

time-delaying the first pulsed split beam relative to the second pulsed split beam by an optical delay device,

generating a timing baseband signal including a timing jitter of the pulse repetition rate based on the time-delayed first pulsed split beam and the second pulsed split beam by a timing detector device, which is a correlation detector,

generating a feedback signal based on the timing baseband signal, and

applying the feedback signal on the pulsed laser oscillator and controlling the pulse repetition rate of the pulsed laser beam based on the feedback signal.

2. The method according to claim 1 , wherein

the correlation detector comprises at least one of: an electronic cross correlator, a balanced optical cross correlator, and a non-balanced optical cross correlator.

3. The method according to claim 1 , wherein

the pulsed laser oscillator includes a piezoelectric transducer for adjusting a resonator length of the pulsed laser oscillator, and

the pulse repetition rate of the pulsed laser beam is controlled by providing the feedback signal for the piezoelectric transducer and adjusting the resonator length in dependency on the feedback signal.

4. The method according to claim 1 , wherein

the pulsed laser oscillator includes an optical modulator, which is an electro-optic modulator, for adjusting at least one of a phase, amplitude and polarization of light within the pulsed laser oscillator, and

the pulse repetition rate of the pulsed laser beam is controlled by providing the feedback signal for the optical modulator and adjusting the at least one of the phase, amplitude and polarization in dependency on the feedback signal.

5. The method according to claim 1 , wherein

the optical delay device includes a variable delay stage which introduces a time delay that effects both of the first and second pulsed split beams through the feedback signal applied on the pulsed laser oscillator, and

the pulse repetition rate of the pulsed laser beam is set by changing an optical delay provided by the variable delay stage which in turn changes the feedback signal applied to set the pulse repetition rate.

6. The method according to claim 5 , wherein the variable delay stage comprises at least one of

a) at least one mirror on a translation stage,

b) a fiber stretcher,

c) an optical modulator,

d) a variable delay element on chip inscribed in a waveguide, and

e) a variable delay element based on thermally controlled optical fiber.

7. The method according to claim 1 , wherein the timing detector device comprises at least one of the features

a) the timing detector device comprises at least two photodetectors and an electronic mixer,

b) the timing detector device is a balanced optical cross correlator,

c) the timing detector device is a balanced optical cross correlator inscribed in a waveguide,

d) the timing detector device comprises a non-linear crystal and at least two photodetectors,

e) the timing detector device comprises a sum frequency generating non-linear crystal and at least two photodetectors, and

f) the timing detector device is configured to generate a timing baseband signal value of 0 when a pulse of the first pulsed split beam and a pulse of the second pulsed split beam exactly overlap in time.

8. The method according to claim 1 , wherein

the optical delay system comprises a first optical path having a first path length, and a second optical path having a second path length wherein the first pulsed split beam is guided along the first optical path and the second pulsed split beam is guided along the second optical path, and

the first path length is longer than the second path length.

9. The method according to claim 8 , wherein the first path length is

a) more than 100 m, or

b) more than 1 km, or

c) more than 7 km,

longer than the second path length.

10. The method according to claim 8 , wherein the first optical path comprises at least one of

a) an optical fiber with a length greater than or equal to the first path length,

b) a multiple-reflection delay line member comprising at least two mirror elements,

c) a waveguide based delay on a chip,

d) an optical amplifier,

e) a dispersion compensation element, and

f) a reflector.

11. The method according to claim 1 , wherein

the step of generating the feedback signal comprises passing the baseband signal through a loop filter, wherein the timing baseband signal is generated within a linear regime near a zero-point crossing of the timing detector device.

12. The method according to claim 1 , wherein

the method uses only light of the pulsed laser oscillator for controlling the pulse repetition rate.

13. The method according to claim 1 , wherein

the method does not use light of any additional pulsed laser oscillator for controlling the pulse repetition rate.

14. The method according to claim 1 , wherein

the method uses a complete frequency spectrum of the generated pulsed laser beam.

15. The method according to claim 1 , comprising at least one of the features

a) the pulsed laser oscillator is a pulsed femtosecond laser oscillator,

b) the pulsed laser oscillator is mode-locked,

c) the pulsed laser beam comprises a pulse train, and

d) the pulse repetition rate of the pulsed laser oscillator is in a radio frequency range or microwave frequency range.

16. A method for controlling a pulse repetition rate of a pulsed laser beam created by a pulsed laser oscillator, comprising the steps of

generating the pulsed laser beam by the pulsed laser oscillator,

splitting the pulsed laser beam into a first pulsed split beam and a second pulsed split beam,

time-delaying the first pulsed split beam relative to the second pulsed split beam by an optical delay device,

generating a timing baseband signal including a timing jitter of the pulse repetition rate based on the time-delayed first pulsed split beam and the second pulsed split beam by a timing detector device,

generating a feedback signal based on the timing baseband signal, and

applying the feedback signal on the pulsed laser oscillator and controlling the pulse repetition rate of the pulsed laser beam based on the feedback signal, wherein

the method involves no filtering of the generated pulsed laser beam for controlling the pulse repetition rate.

17. A repetition rate control apparatus being configured for controlling a pulse repetition rate of a pulsed laser oscillator, comprising

a) a beam splitter device being configured for splitting a pulsed laser beam into a first pulsed split beam and a second pulsed split beam,

b) an optical delay system being configured for time-delaying the first pulsed split beam relative to the second pulsed split beam,

c) a timing detector device, which is a correlation detector and is-being configured for generating a timing baseband signal based on the time-delayed first pulsed split beam and the second pulsed split beam, and

d) a feedback generation circuit for generating a feedback signal, based on the base-band signal, wherein the feedback signal is capable of controlling the pulse repetition rate of the pulsed laser beam.

18. The repetition rate control apparatus according to claim 17 , wherein

the correlation detector comprises at least one of: an electronic cross correlator, a balanced optical cross correlator, and a non-balanced optical cross correlator.

19. A pulsed laser oscillator, comprising a repetition rate control apparatus according to claim 17 .

20. The pulsed laser oscillator according claim 19 , comprising at least one of

a) a laser extractor, configured to output the pulsed laser beam, and

b) a microwave extractor, configured to convert the pulsed laser beam in a microwave beam.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 15, 2022
From: KAERTNER, FRANZ XAVER
To: DEUTSCHES ELEKTRONEN-SYNCHROTRON DESY
Reel/Frame 060214/0711 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 15, 2022
From: SHAFAK, KEMAL; ANAN, DAI
To: CYCLE GMBH
Reel/Frame 060214/0754 →
Priority Claims (1)
EP 21171191 · Apr 29, 2021 · regional
Continuity (1)
Related Publication 20220352687A1 · Nov 3, 2022
References Cited (17)
US 5367529A · Holsinger · 1994 [cited by examiner]
US 5929430A · Yao et al. · 1999 [cited by applicant]
US 5999545A · Jeon · 1999 [cited by examiner]
US 7397567B2 · Kaertner et al. · 2008 [cited by applicant]
US 7940390B2 · Kaertner · 2011 [cited by examiner]
US 8976822B2 · Maleki et al. · 2015 [cited by applicant]
US 10158208B2 · Kim · 2018 [cited by examiner]
US 20110134943A1 · Hartl et al. · 2011 [cited by applicant]
Bartels et al. (2005). Femtosecond-laser-based synthesis of ultrastable microwave signals from optical frequency references. Optics Letters, 30(6), 667-669. [cited by applicant]
Fortier et al. (2011). Generation of ultrastable microwaves via optical frequency division. Nature Photonics, 5, 425-429. [cited by applicant]
Jung et al. (2015). All-fibre photonic signal generator for attosecond timing and ultralow-noise microwave. Scientific Reports, 1-7. [cited by applicant]
Kim et al. (2007). Attosecond-resolution timing jitter characterization of free-running mode-locked lasers. Optics Letters, 32(24), 3519-3521. [cited by applicant]
Kwon et al. (2017). All-fiber interferometer-based repetition-rate stabilization of mode-locked lasers to 10-14-level frequency instability and 1-fs-level jitter over 1 s. Optics Letters, 42(24), 5186-5189. [cited by applicant]
Kwon et al. (2017). Reference-free, high-resolution measurement method of timing jitter spectra of optical frequency combs. Scientific Reports, 1-9. [cited by applicant]
Wei et al. (2018). All-fiber-photonics-based ultralow-noise agile frequency synthesizer for X-band radars. Photonics Research, 6(1), 12-17. [cited by applicant]
Yao et al. (1996). Optoelectronic microwave oscillator. Optical Society of America, 13(8), 1725-1735. [cited by applicant]
Extended European Search Report dated Oct. 27, 2021 for EP 21171191.6. [cited by applicant]