132 W 132 μJ Femtosecond Pulses from a Coherently Combined System of Two Rod-Type Photonic Crystal Fibers

  • Gehui Xie
  • , Daping Luo
  • , Zhenqiang Tang
  • , Zejiang Deng
  • , Lian Zhou
  • , Jiayi Pan
  • , Chenglin Gu
  • , Can Li
  • , Yang Liu
  • , Jinyong Leng
  • , Pu Zhou
  • , Wenxue Li*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

4 Scopus citations

Abstract

A coherent beam combination has the potential to revolutionize high-peak-power laser systems. However, achieving a high-average-power ultrashort pulse is difficult due to the accumulation of a nonlinear phase and gain narrowing. In this article, we demonstrate a coherent beam combination system that does not require pulse shaping or a spectral modulator. By optimizing the gain of each amplifier and using highly integrated optical components, we reduce the limitations caused by the accumulation of a nonlinear phase and gain narrowing. In our study, we used a polarization beam splitter to combine the pulses from two rod-type photonic crystal fibers (PCFs) in a Mach–Zehnder-type interferometer. A piezo-mounted mirror controlled with a Hänsch–Couillaud polarization detecting system was used to stabilize active phase locking. The system produces 165 W with a 91.6% combining efficiency compared to 90 W per amplifier. Compressed pulses with an energy of 132 µJ and Gaussian fitting pulse duration of 330 fs were achieved.

Original languageEnglish
Article number1138
JournalPhotonics
Volume10
Issue number10
DOIs
StatePublished - Oct 2023
Externally publishedYes

Keywords

  • coherent combining
  • fiber lasers and amplifiers
  • ultrafast lasers

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