• Journal of Synthetic Crystals
  • Vol. 52, Issue 7, 1286 (2023)
HUANG Jianhua1,*, WU Jie1,2, HUANG Yidong1, LIN Yanfu1..., GONG Xinghong1 and CHEN Yujin1|Show fewer author(s)
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    HUANG Jianhua, WU Jie, HUANG Yidong, LIN Yanfu, GONG Xinghong, CHEN Yujin. Growth, Spectroscopic and 1.5 μm Laser Properties of Er3+,Yb3+∶Ba3Gd(PO4)3 Crystals[J]. Journal of Synthetic Crystals, 2023, 52(7): 1286 Copy Citation Text show less
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    [4] TOLSTIK N A, KISEL V E, KULESHOV N V, et al. Er, Yb∶YAl3(BO3)4-efficient 1.5 μm laser crystal[J]. Applied Physics B, 2009, 97(2): 357-362.

    [5] CHEN Y J, LIN Y F, YANG Z M, et al. Eye-safe 1.55 μm Er∶Yb∶YAl3(BO3)4 microchip laser[J]. OSA Continuum, 2019, 2(1): 142-150.

    [6] WU G D, FAN M D, JIANG C, et al. Noncentrosymmetric orthophosphate YM3(PO4)3 (M=Sr, Ba) crystals: single crystal growth, structure, and properties[J]. Crystal Growth & Design, 2020, 20(4): 2390-2397.

    [7] WU G D, FAN M D, YU F P, et al. Growth, thermal, and spectroscopic properties of YbBa3(PO4)3 single crystal: a new stoichiometric lasing material[J]. Crystal Growth & Design, 2020, 20(12): 7963-7971.

    [8] WU G D, YIN X Q, FAN M D, et al. Nd-doped structurally disordered YSr3(PO4)3 single crystal: growth and laser performances[J]. Journal of Rare Earths, 2021, 39(12): 1540-1546.

    [9] YIN X Q, WU G D, FAN S Z, et al. All-solid-state widely wavelength-tunable and high-efficiency Yb∶YSr3(PO4)3 laser[J]. Applied Optics, 2021, 60(22): 6713-6718.

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    HUANG Jianhua, WU Jie, HUANG Yidong, LIN Yanfu, GONG Xinghong, CHEN Yujin. Growth, Spectroscopic and 1.5 μm Laser Properties of Er3+,Yb3+∶Ba3Gd(PO4)3 Crystals[J]. Journal of Synthetic Crystals, 2023, 52(7): 1286
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