• Bulletin of the Chinese Ceramic Society
  • Vol. 41, Issue 11, 3756 (2022)
GUO Yongchang1、2、3、*, LI Can2、4, FENG Shaowei1、2、3, TAO Haizheng4, WANG Hui2、3、5, and LI Jianqiang1、2、3、5
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • 4[in Chinese]
  • 5[in Chinese]
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    GUO Yongchang, LI Can, FENG Shaowei, TAO Haizheng, WANG Hui, LI Jianqiang. Exploration of Chalcogenide Glass Fiber Preparation Method Based on Pulse Injection Technology[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(11): 3756 Copy Citation Text show less
    References

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    [2] ADAM J L, ZHANG X. Chalcogenide glasses: preparation, properties and applications[M]. Cambridge: Woodhead Publishing, 2014.

    [3] SANGHERA J S, AGGARWAL I D. Active and passive chalcogenide glass optical fibers for IR applications: a review[J]. Journal of NonCrystalline Solids, 1999, 256/257: 616.

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    [8] ASOBE M. Nonlinear optical properties of chalcogenide glass fibers and their application to alloptical switching[J]. Optical Fiber Technology, 1997, 3(2): 142148.

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    [14] DEVYATYKH G G, DIANOV E M, PLOTNICHENKO V G, et al. Fiber waveguides based on highpurity chalcogenide glasses[J]. HighPurity Substances, 1991, 5: 127.

    [15] KETKOVA L A, CHURBANOV M F. Heterophase inclusions as a source of nonselective optical losses in highpurity chalcogenide and tellurite glasses for fiber optics[J]. Journal of NonCrystalline Solids, 2018, 480: 1822.

    [16] CHURBANOV M F, PLOTNICHENKO V G. Optical fibers from highpurity arsenic chalcogenide glasses[J]. Semiconductors and Semimetals, 2004, 80: 209230.

    [17] SHIRYAEV V S, CHURBANOV M F. Recent advances in preparation of highpurity chalcogenide glasses for midIR photonics[J]. Journal of NonCrystalline Solids, 2017, 475: 19.

    [18] NGUYEN V Q, SANGHERA J S, COLE B, et al. Fabrication of arsenic sulfide optical fiber with low hydrogen impurities[J]. Journal of the American Ceramic Society, 2002, 85: 20562058.

    [20] SHIRYAEV V S, MISHINOV S V, CHURBANOV M F. Investigation of adhesion of chalcogenide glasses to silica glass[J]. Journal of NonCrystalline Solids, 2015, 408: 7175.

    [21] MISHINOV S, CHURBANOV M, GOROKHOV A N, et al. Adhesion mechanism of destruction of silicaglass surface during the preparation and treatment of optical glassy arsenic chalcogenides[J]. Inorganic Materials, 2016, 52: 716720.

    [22] WU Z H, XU Y S, QI D F, et al. Progress in preparation and applications of TeAsSe chalcogenide glasses and fibers[J]. Infrared Physics & Technology, 2019, 102: 102981.

    [23] MASUDA S, TAKAGI K, DONG W, et al. Solidification behavior of falling germanium droplets produced by pulsated orifice ejection method[J]. Journal of Crystal Growth, 2008, 310(11): 29152922.

    [24] LI C, LI J Q, HU Y Y, et al. Preparation and solidification process of monosized CuNiSn microspheres by pulsated orifice ejection method[J]. Materials Research Express, 2019, 6(5): 056517.

    [25] GUO Y C, LI C, DENG N, et al. Preparation of high sphericity monodisperse aluminum microspheres by pulsated orifice ejection method[J]. Materials Today Communications, 2022, 30: 103110.

    GUO Yongchang, LI Can, FENG Shaowei, TAO Haizheng, WANG Hui, LI Jianqiang. Exploration of Chalcogenide Glass Fiber Preparation Method Based on Pulse Injection Technology[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(11): 3756
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