• High Power Laser and Particle Beams
  • Vol. 33, Issue 11, 111008 (2021)
Haisheng Song1, Yuping Liu1、2, Hao Teng2、3、*, Yang Yu2、4, Xiaotian Feng2, Xiaodong Shao2, Renchong Lü2、4, Hainian Han2, Jiangfeng Zhu4, and Zhiyi Wei2、3、5
Author Affiliations
  • 1School of Physics and Electronic Engineering, Northwest Normal University, Lanzhou 730070, China
  • 2Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China
  • 3Songshan Lake Material Laboratory, Dongguan 523808, China
  • 4School of Physics and Optoelectronic Engineering, Xidian University, Xi'an 710071, China
  • 5School of Physical Sciences, University of Chinese Academy of Sciences, Beijing 100049, China
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    DOI: 10.11884/HPLPB202133.210346 Cite this Article
    Haisheng Song, Yuping Liu, Hao Teng, Yang Yu, Xiaotian Feng, Xiaodong Shao, Renchong Lü, Hainian Han, Jiangfeng Zhu, Zhiyi Wei. Self-starting mode-locking Ti: sapphire oscillator synchronously pumped by femtosecond fiber laser[J]. High Power Laser and Particle Beams, 2021, 33(11): 111008 Copy Citation Text show less
    References

    [1] Rapoport W R, Khattak C P. Titanium sapphire laser characteristics[J]. Applied Optics, 27, 2677-2684(1988).

    [2] Spence D E, Kean P N, Sibbett W. 60-fsec pulse generation from a self-mode-locked Ti: Sapphire laser[J]. Optics Letters, 16, 42-44(1991).

    [3] Salin F, Squier J, Piché M. Mode locking of Ti: sapphire lasers and self-focusing: a Gaussian approximation[J]. Optics Letters, 16, 1674-1676(1991).

    [4] He Huijun. Amplification of ultrasht pulse laser generation of infrared femtosecond pulses[D]. Beijing: Institute of Physics, Chinese Academy of Sciences, 2018

    [5] Sutter D H, Steinmeyer G, Gallmann L, et al. Semiconductor saturable-absorber mirror–assisted Kerr-lens mode-locked Ti: sapphire laser producing pulses in the two-cycle regime[J]. Optics Letters, 24, 631-633(1999).

    [6] Asaki M T, Huang C P, Garvey D, et al. Generation of 11-fs pulses from a self-mode-locked Ti: sapphire laser[J]. Optics Letters, 18, 977-979(1993).

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    [9] Liu Han, Wang Geyang, Jiang Jianwang, et al. Sub-10-fs pulse generation from a blue laser-diode-pumped Ti: sapphire oscillator[J]. Chinese Optics Letters, 18, 071402(2020).

    [10] Ell R, Angelow G, Seitz W, et al. Quasi-synchronous pumping of modelocked few-cycle titanium sapphire lasers[J]. Optics Express, 13, 9292-9298(2005).

    [11] Didenko N V, Konyashchenko A V, Konyashchenko D A, et al. Ti: sapphire laser synchronised with femtosecond Yb pump laser via nonlinear pulse coupling in Ti: sapphire active medium[J]. Quantum Electronics, 47, 7-13(2017).

    [12] Meng Xianghao. Generation application of tunable femtoseond laser pulse synchronously pumped by all solid state modelocking laser[D]. Beijing: Institute of Physics, Chinese Academy of Sciences, 2018

    [13] Strickland D, Mourou G. Compression of amplified chirped optical pulses[J]. Optics Communications, 56, 219-221(1985).

    [14] Pask H M, Carman R J, Hanna D C, et al. Ytterbium-doped silica fiber lasers: versatile sources for the 1-1.2 μm region[J]. IEEE Journal of Selected Topics in Quantum Electronics, 1, 2-13(1995).

    [15] Yu Yang. Ytterbiumdoped fiber laser amplification wavelength extension[D]. Xi’an: Xidian University, 2020

    Haisheng Song, Yuping Liu, Hao Teng, Yang Yu, Xiaotian Feng, Xiaodong Shao, Renchong Lü, Hainian Han, Jiangfeng Zhu, Zhiyi Wei. Self-starting mode-locking Ti: sapphire oscillator synchronously pumped by femtosecond fiber laser[J]. High Power Laser and Particle Beams, 2021, 33(11): 111008
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