Electro-Optic Technology Application, Volume. 28, Issue 6, 38(2022)

Miniatured Sub-nanosecond YAG/Nd:YAG/Cr4+:YAG Microchip Laser

SUN Xiaohui, SONG Haipeng, YE Shuai, NIE Hongkun, HE Jingliang, and ZHANG Baitao
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    References(10)

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    [9] [9] GONZALEZ J J, FERNANDEZ A, OROPEZA D, et al. Femtosecond laser ablation: experimental study of the repetition rate influence on inductively coupled plasma mass spectrometry performance[J]. Spectrochimica Acta Part B Atomic Spectroscopy, 2008, 63(2): 277-286.

    [12] [12] DONG J. Numerical modeling of CW-pumped repetitively passively Q-switched Yb:YAG lasers with Cr:YAG as saturable absorber[J]. Optics Communications, 2003, 226(1): 337-344.

    [13] [13] LI G, ZHAO S, YANG K, et al. Theoretical and experimental study of a laser diode end-pumped passively Q-switched Nd:YVO4 laser with Cr4+:YAG saturable absorber[J]. Optical Engineering, 2004, 43(11): 2762-2768.

    [14] [14] SHI B, LI J, YE S, et al. Modified Frantz-Nodvik equation for CW end-pumped high-repetition-rate picosecond laser amplifier[J]. Optical Engineering, 2021, 60(9): 096106.

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    [18] [18] LI C Y, DONG J. Pump beam waist-dependent pulse energy generation in Nd:YAG/Cr4+:YAG passively Q-switched microchip laser[J]. Journal of Modern Optics, 2016, 63(14): 1-8.

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    SUN Xiaohui, SONG Haipeng, YE Shuai, NIE Hongkun, HE Jingliang, ZHANG Baitao. Miniatured Sub-nanosecond YAG/Nd:YAG/Cr4+:YAG Microchip Laser[J]. Electro-Optic Technology Application, 2022, 28(6): 38

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    Paper Information

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    Received: Aug. 29, 2022

    Accepted: --

    Published Online: Mar. 13, 2023

    The Author Email:

    DOI:

    CSTR:32186.14.

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