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Intracavity polarization control in mode-locked Er-doped fibre lasers using liquid crystals

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Języki publikacji
EN
Abstrakty
EN
In this paper we present a novel configuration of an NPR mode-locked Er-doped laser. This new optical setup uses voltage controlled LC cells to replace standard retarders (quarter- and half-waveplates) inside the laser cavity. Using this novel, mechanical-adjustment-free setup a mode-locking was obtained with sub-500 fs pulse duration and an average power exceeding 40 mW. Presented results show that using simple LC cells, an optical layout of an NPR mode-locked laser can be greatly simplified.
Twórcy
autor
  • Wrocław Research Centre EIT+, 147 Stablowicka Str., 54-066 Wrocław, Poland
autor
  • Wrocław University of Technology, 27 Wybrzeże Wyspiańskiego Str., 50-370 Wrocław, Poland
autor
  • Wrocław Research Centre EIT+, 147 Stablowicka Str., 54-066 Wrocław, Poland
autor
  • Wrocław University of Technology, 27 Wybrzeże Wyspiańskiego Str., 50-370 Wrocław, Poland
autor
  • Wrocław University of Technology, 27 Wybrzeże Wyspiańskiego Str., 50-370 Wrocław, Poland
autor
  • Wrocław University of Technology, 27 Wybrzeże Wyspiańskiego Str., 50-370 Wrocław, Poland
  • Wrocław Research Centre EIT+, 147 Stablowicka Str., 54-066 Wrocław, Poland
Bibliografia
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  • 7. K. Krzempek, G. Sobon, P. Kaczmarek, and K. Abramski, “A sub-100 fs stretched-pulse 205 MHz repetition rate passively mode-locked Er-doped all-fibre laser”, Laser Phys. Lett. 10, 105103 (2013).
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  • 18. Z. Zu Xing, X. Kun, W. Jian, H.-X. Bing, and L.J. Tong, “Two different operation regimes of fibre laser based on non-linear polarization rotation: passive mode-locking and multi-wavelength emission”, IEEE Photonic Technol. Lett. 20, 979–981 (2008).
  • 19. M. Nikodem and K. Abramski, “169 MHz repetition frequency all-fibre passively mode-locked erbium doped fibre laser”, Opt. Commun. 283, 109–112 (2010).
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  • 23. X. Shen, W. Li, M. Yan, and H. Zeng, “Electronic control of nonlinear-polarization-rotation mode locking in Yb-doped fiber lasers”, Opt. Lett. 37, 3426–3428 (2012).
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Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-3df74500-67d3-4296-8078-8e8ed1539dfd
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