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  4. Frequency Comb Stabilization of Ultrafast Lasers by Opto-Optical Modulation of Semiconductors
 
research article

Frequency Comb Stabilization of Ultrafast Lasers by Opto-Optical Modulation of Semiconductors

Guerel, Kutan
•
Hakobyan, Sargis  
•
Wittwer, Valentin Johannes
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September 1, 2018
IEEE Journal of Selected Topics in Quantum Electronics

In this paper, we review the current state and discuss new developments in opto-optical modulation (OOM) of semiconductor elements for frequency comb self-referenced stabilization of ultrafast lasers. This method has been successfully used for carrier-envelope offset (CEO) frequency stabilization of diode-pumped solid-state lasers operating in 1-mu m and 1.5-mu m regimes, providing high feedback bandwidth and resulting in low noise performance. We compare the achieved results for Er- and Yb-based laser materials and in different regimes of repetition rates up to 1 GHz. In addition, we present the first semiconductor OOM for CEO stabilization in an ultrafast fiber laser. Moreover, we discuss requirements and design guidelines for OOM chips. In most demonstrations, semiconductor saturable absorber mirrors have been used for OOM, which in parallel were also responsible for pulse formation. By separating the OOM functionality from the pulse formation, we expect that it will enable low-noise CEO stabilization in other types of ultrafast lasers, such as, for example, high-power Kerr-lens mode-locked thin disk lasers.

  • Details
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Type
research article
DOI
10.1109/JSTQE.2018.2814783
Web of Science ID

WOS:000430748000001

Author(s)
Guerel, Kutan
Hakobyan, Sargis  
Wittwer, Valentin Johannes
Schilt, Stephane  
Suedmeyer, Thomas
Date Issued

2018-09-01

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC

Published in
IEEE Journal of Selected Topics in Quantum Electronics
Volume

24

Issue

5

Article Number

1102309

Subjects

Engineering, Electrical & Electronic

•

Optics

•

Physics, Applied

•

Engineering

•

Physics

•

mode-locked lasers

•

optical frequency comb

•

stabilization

•

metrology

•

solid-state laser

•

quantum cascade laser

•

ghz repetition rate

•

optical amplifiers

•

gain modulation

•

phase-control

•

fiber-laser

•

sesam

•

noise

•

bandwidth

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
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Available on Infoscience
December 13, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/152651
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