• Acta Optica Sinica
  • Vol. 32, Issue 10, 1016004 (2012)
Liu Yongxing*, Zhang Peiqing, Xu Yinsheng, Wang Xunsi, Dai Shixun, Nie Qiuhua, and Xu Tiefeng
Author Affiliations
  • [in Chinese]
  • show less
    DOI: 10.3788/aos201232.1016004 Cite this Article Set citation alerts
    Liu Yongxing, Zhang Peiqing, Xu Yinsheng, Wang Xunsi, Dai Shixun, Nie Qiuhua, Xu Tiefeng. 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 Copy Citation Text show less
    References

    [1] S. Février, D. D. Gaponov, P. Roy et al.. High-power photonic-bandgap fiber laser[J]. Opt. Lett., 2008, 33(9): 989~991

    [2] T. Ritari, J. Tuominen, H. Ludvigsen et al.. Gas sensing using air-guiding photonic bandgap fibers[J]. Opt. Express, 2004, 12(17): 4080~4087

    [3] K. Uchiyama, T. Morioka, M. Saruwatari et al.. Error free all-optical demultiplexing using a chalcogenide glass fibre based nonlinear optical loop mirror[J]. Electron. Lett., 1996, 32(17): 1601~1602

    [4] Wang Wei, Hou Lantian. Present situation and future development in photonic crystal fibers[J]. Laser & Optoelectronics Progress, 2008, 45(2): 43~58

    [5] Gao Yongfang, Shi Jiaming, Zhao Dapeng et al.. Design and fabrication of a kind of far infrared and 10.6 μm laser band compatible camouflage material based on photonic crystals[J]. Acta Optica Sinica, 2011, 31(6): 0616001

    [6] Yu Xingyan, Dai Shixun, Zhou Yaxun et al.. Theoretical studies on mid-infrared gain characteristics of erbium-doped chalcogenide glass fibers[J]. Chinese J. Lasers, 2012, 39(1): 0105003

    [7] Dai Shixun, Yu Xingyan, Zhang Wei et al.. Research progress of chalcogenide glass photonic crystal fibers[J]. Laser & Optoelectronics Progress, 2011, 48(9): 090602

    [8] Wang Xunsi, Liang Xiaowei, Zhu Mingxing et al.. Optic effect of KCl on GeS2-Ga2S3 chalcogenide glasses[J]. Acta Optica Sinica, 2010, 30(7): 2047~2052

    [9] T. M. Monro, Y. D. West, D. W. Hewak et al.. Chalcogenide holey fibres[J]. Electron. Lett., 2000, 36(24): 1998~2000

    [10] J. Knight, J. Broeng, T. Birks et al.. Photonic band gap guidance in optical fibers[J]. Science, 1998, 282(5393): 1476~1478

    [11] R. Cregan, B. Mangan, J. Knight et al.. Single-mode photonic band gap guidance of light in air[J]. Science, 1999, 285(5433): 1537~1539

    [12] F. Désévédavy, G. Renversez, J. Troles et al.. Chalcogenide glass hollow core photonic crystal fibers[J]. Optical Materials, 2010, 32(11): 1532~1539

    [13] H. Nguyen, K. Finsterbusch, D. Moss et al.. Dispersion in nonlinear figure of merit of As2Se3 chalcogenide fibre[J]. Electron. Lett., 2006, 42(10): 571~572

    [14] Guo Xiarui, Yang Dexing, Zhao Jianlin et al.. Experimental investigation on the bending loss properties of photonic crystal fibers[J]. Acta Photonica Sinica, 2007, 36(10): 1817~1820

    [15] M. Tefelska, S. Ertman, T. Wolinski et al.. Large area multimode photonic band gap propagation in photonic liquid crystal fiber[J]. IEEE Photon. Technol. Lett., 2012, 24(8): 631~633

    [16] R. J. Noble, J. E. Spencer, B. T. Kuhlmey. Hollow-core photonic band gap fibers for particle acceleration[J]. Phys. Rev. Special Topics-Accelerators and Beams, 2011, 14(12): 121303

    [17] L. V. Doronina-Amitonova, I. V. Fedotov, O. I. Ivashkina et al.. Photonic-crystal-fiber platform for multicolor multilabel neurophotonic studies[J]. Appl. Phys. Lett., 2011, 98(25): 253706

    [18] L. Chen, G. J. Pearce, T. A. Birks et al.. Guidance in Kagome-like photonic crystal fibres I: analysis of an ideal fibre structure[J]. Opt. Express, 2011, 19(7): 6945~6956

    [19] L. Zhang, S. G. Li, Y. Y. Yao et al.. Properties of high birefringence chalcogenide glass holey fibre for mid-infrared transparency[J]. J. Opt., 2010, 12(3): 035207

    [20] T. Engeness, M. Ibanescu, S. Johnson et al.. Dispersion tailoring and compensation by modal interactions in OmniGuide fibers[J]. Opt. Express, 2003, 11(10): 1175~1196

    [21] J. Lgsgaard. Zero-velocity solitons in high-index photonic crystal fibers[J]. J. Opt. Soc. Am. B, 2011, 28(1): 37~44

    [22] S. G. Li, H. S. Zhou, G. B. Yin. Bandgaps of the chalcogenide glass hollow-core photonic crystal fiber[J]. Chin. Phys. Lett., 2011, 28(11): 114204

    [23] A. F. Oskooi, J. Joannopoulos, S. G. Johnson. Zero-group-velocity modes in chalcogenide holey photonic-crystal fibers[J]. Opt. Express, 2009, 17(12): 10082~10090

    [24] Lan Jianhua, Xu Tiefeng, Nie Qiuhua et al.. Effect of CsCl content on crystallization characteristics and properties of infrared transmitting of GeSe2-Sb2Se3 glasses[J]. J. Chinese Ceramic Society, 2009, 37(4): 568~573

    [25] Sun Jie, Nie Qiuhua, Wang Xunsi et al.. Reaserch on thermal and optical properties of novel Ge-Te-Se-Sn far infrared transmitting chalcogenide glasses[J]. Acta Optica Sinica, 2011, 31(11): 1116003

    [26] J. Wang, E. Vogel, E. Snitzer. Tellurite glass: a new candidate for fiber devices[J]. Optical Materials, 1994, 3(3): 187~203

    [27] R. Weiblen, A. Docherty, J. Hu et al.. Calculation of the expected bandwidth for a mid-infrared supercontinuum source based on As2S3 chalcogenide photonic crystal fibers[J]. Opt. Express, 2010, 18(25): 26666~26674

    [28] F. Brechet, J. Marcou, D. Pagnoux et al.. Complete analysis of the characteristics of propagation into photonic crystal fibers, by the finite element method[J]. Opt. Fiber Technol., 2000, 6(2): 181~191

    [29] J. Meng, L. T. Hou, G. Y. Zhou et al.. Analysis of the special hollow-core photonic crystal fibre by finite element method[J]. Chin. Phys. B, 2008, 17 (10): 3779~3784

    CLP Journals

    [1] 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

    Liu Yongxing, Zhang Peiqing, Xu Yinsheng, Wang Xunsi, Dai Shixun, Nie Qiuhua, Xu Tiefeng. 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
    Download Citation