• Acta Photonica Sinica
  • Vol. 44, Issue 3, 306003 (2015)
DONG Yang-jian1、*, DAI Shi-xun1, ZHANG Pei-qing1、2, LIU Yong-xing1, YANG Pei-long1, and WANG Xun-si1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    DOI: 10.3788/gzxb20154403.0306003 Cite this Article
    DONG Yang-jian, DAI Shi-xun, ZHANG Pei-qing, LIU Yong-xing, YANG Pei-long, WANG Xun-si. Design and Performance of a Low-loss Chalcogenide Hollow-core Photonic Crystal Fiber at 4.3 μm[J]. Acta Photonica Sinica, 2015, 44(3): 306003 Copy Citation Text show less
    References

    [1] ZHANG Xin, GUO Yi-zhong, WAN Xin-min, et al. Simulation of early warning and detection capability of ballistic missile in boosting phase based on infrared characteristic[J]. Shipoard Electronic Count Ermeasure, 2010, 33(5): 92-95.

    [2] XIE Xu-fen, REN Zhi-bin, CAO Xiao-yan, et al. Model building and analyses on infrared radiation characteristics of exhaust plume of cruise missile[J]. Opto-Electronic Engineering, 2009, 36(4): 70-74.

    [3] EDGAR F J, KLAUS S. Investigation of temperature and gas concentration distributions in hot exhausts (airplanes and burners) by scanning imaging FTIR spectrometry[C]. SPIE, (S0277-786X), 2005, 5979(10): 365-376.

    [4] DAI Shi-xun, YU Xing-yan. Research progress of chalcogenide glass photonic crystal fibers[J]. Laser & Optoelectronics Progress, 2011, 48(9): 1-10.

    [5] SHAW L, SANGHERA J, AGGARWAL I, et al. As-S and As-Se based photonic band gap fiber for IR laser transmission [J]. Optics Express, 2003, 11(25): 3455-3460.

    [6] SANGHERA J S, SHAW L B, PUREZA P, et al. Nonlinear properties of chalocogenide glass fibers[J]. Journal of Optoelectronics and Advanced Materials, 2007, 1(08): 2148-2155.

    [7] DESEVEDAVY F, RENVERSEZ G, TROLES J, et al. Chalcogenide glass hollow core photonic crystal fibers[J]. Optical Materials, 2010, 32(06): 1532-1539.

    [8] LLI Shu-guang. Band-gaps of the chalcogenide glass hollow-core photonic crystal fiber[J]. Chinese Physics Letters, 2011, 55(28): 114204-1-114204-4.

    [9] LIU Yong-xing, ZHANG Pei-qing, XU Yin-sheng, et al. Preparation of Ge30Sb8Se62 chalcogenide glass and designing for a low-loss hollow-core photonic crystal fiber at 10.6 μm[J]. Acta Optica Sinica, 2012, 32(10): 1016004-1-1016004-6.

    [10] ZHANG Chi, HU Ming-lie, SONG You-jian, et al. An Yb-doped large-mode-area photonic crystal fiber mode-locking laser with free output coupler[J]. Acta Physica Sinica, 2009, 58(11): 7727-7733.

    [11] WANG Dou-dou, WANG Li-li. Low loss and high birefringence topas photonic bandgap fiber at terahertz frequency[J]. Acta Photonica Sinica, 2014, 43(6): 06-0606002-5.

    [12] CAO Feng-zhen, ZHANG Pei-qing, DAI Shi-xun, et al. 3-5 Microns chalcogenide photonic crystal fiber with broadband ultra-low flattened dispersion[J]. Acta Photonica Sinica, 2014, 43(6): 06-0606003-6.

    [13] BRECHET F, MARCOU J, PAGNOUX D, et al. Complete analysis of the characteristics of propagation into photonic crystal fibers, by the finite element method[J]. Optical Fiber Technology, 2000, 6(2): 181-191.

    [14] MENG Jia, HOU Lan-tian. Analysis of the special hollow-core photonic crystal fibre by finite element method[J]. Chinese Physics B, 2008, 17(10): 3779-3784.

    [15] HAXHA S, ADEMGIL H. Novel design of photonic crystal fibres with low confinement losses, nearly zero ultra-flatted chromatic dispersion, negative chromatic dispersion and improved effective mode area[J]. Optics Communications, 2008, 281(2): 278-286.

    [16] YI Chang-shen, DAI Shi-xun. Design of a novel single-mode large mode area infrared chalcogenide glass photonic crystal fibers[J]. Acta Physica Sinica, 2013, 62(8): 84206-1-84206-7.

    [17] DAI Shi-xun, CHEN Hui-guang, LI Mao-zhong, et al. Halcogenide glasses and their infrared optical applications[J]. Infrared and Laser Engineering, 2012, 41(4): 847-852.

    [18] CARLIE N, ANHEIER NC JR, QIAO HA, et al. Measurement of the refractive index dispersion of As2Se3 bulk glass and thin films prior to and after laser irradiation and annealing using prism coupling in the near- and mid-infrared spectral range[J]. Review of Scientific Instruments, 2011, 82(5): 53103-1- 53103-7.

    [19] LIU Yong-Xing, ZHANG Pei-qing, XU Yin-sheng, et al. Dispersion properties of Ge20Sb15Se65 chalcogenide glass photonic crystal fiber for mid-IR region[J]. Acta Photonica Sinica, 2012, 41(5): 516-521.

    [20] CAO Ying, NIE Qiu-hua, XU Tie-feng, et al.Optical properties and structure of Ge28Sb6S(66-x)Sex glasses[J]. Acta Photonica Sinica, 2010, 37(007): 1153-1157.

    [21] WEIBLEN R, DOCHERTY A, HU J, et al. Calculation of the expected bandwidth for a mid-infrared super continuum source based on As2S3 chalcogenide photonic crystal fibers[J]. Optics Express, 2010, 18(25): 26666-26674.

    DONG Yang-jian, DAI Shi-xun, ZHANG Pei-qing, LIU Yong-xing, YANG Pei-long, WANG Xun-si. Design and Performance of a Low-loss Chalcogenide Hollow-core Photonic Crystal Fiber at 4.3 μm[J]. Acta Photonica Sinica, 2015, 44(3): 306003
    Download Citation