Ultrafast Science, Volume. 2, Issue 1, 9837892(2022)

Distributed Kerr Lens Mode-Locked Yb:YAG Thin-Disk Oscillator

Jinwei Zhang1,2,3、*, Markus Pӧtzlberger4, Qing Wang5, Jonathan Brons2, Marcus Seidel2, Dominik Bauer6, Dirk Sutter6, Vladimir Pervak4, Alexander Apolonski2,4, Ka Fai Mak2, Vladimir Kalashnikov7, Zhiyi Wei3, Ferenc Krausz2,4, and Oleg Pronin2,8
Author Affiliations
  • 1School of Optical and Electronic Information and Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, 430074 Wuhan, China
  • 2Max-Planck Institute of Quantum Optics, Hans-Kopfermann-Str. 1, 85748 GarchingGermany
  • 3Beijing National Laboratory for Condensed Matter Physics and Institute of Physics, Chinese Academy of Sciences, 100190 Beijing, China
  • 4Ludwig Maximilian University of Munich, Am Coulombwall 1, 85748 Garching, Germany
  • 5School of Optics and Photonics, Beijing Institute of Technology, 100081 Beijing, China
  • 6TRUMPF Laser GmbH, Aichhalder Straße 39, D-78713 SchrambergGermany
  • 7Institut für Photonik, TU Wien, A-1040 Vienna, Austria
  • 8Helmut-Schmidt-Universität/Universität der Bundeswehr, 22043 Hamburg, Germany
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    Ultrafast laser oscillators are indispensable tools for diverse applications in scientific research and industry. When the phases of the longitudinal laser cavity modes are locked, pulses as short as a few femtoseconds can be generated. As most high-power oscillators are based on narrow-bandwidth materials, the achievable duration for high-power output is usually limited. Here, we present a distributed Kerr lens mode-locked Yb:YAG thin-disk oscillator which generates sub-50 fs pulses with spectral widths far broader than the emission bandwidth of the gain medium at full width at half maximum. Simulations were also carried out, indicating good qualitative agreement with the experimental results. Our proof-of-concept study shows that this new mode-locking technique is pulse energy and average power scalable and applicable to other types of gain media, which may lead to new records in the generation of ultrashort pulses.

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    Jinwei Zhang, Markus Pӧtzlberger, Qing Wang, Jonathan Brons, Marcus Seidel, Dominik Bauer, Dirk Sutter, Vladimir Pervak, Alexander Apolonski, Ka Fai Mak, Vladimir Kalashnikov, Zhiyi Wei, Ferenc Krausz, Oleg Pronin. Distributed Kerr Lens Mode-Locked Yb:YAG Thin-Disk Oscillator[J]. Ultrafast Science, 2022, 2(1): 9837892

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    Paper Information

    Category: Research Articles

    Received: Jul. 20, 2021

    Accepted: Dec. 8, 2021

    Published Online: Sep. 28, 2023

    The Author Email: Zhang Jinwei (jinweizhang@hust.edu.cn)

    DOI:10.34133/2022/9837892

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