• Laser & Optoelectronics Progress
  • Vol. 50, Issue 2, 20010 (2013)
Yin Dongmei*, Dai Shixun, Wang Xunsi, Xu Yinsheng, Zhang Peiqing, Lin Changgui, and Shen Xiang
Author Affiliations
  • [in Chinese]
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    DOI: 10.3788/lop50.020010 Cite this Article Set citation alerts
    Yin Dongmei, Dai Shixun, Wang Xunsi, Xu Yinsheng, Zhang Peiqing, Lin Changgui, Shen Xiang. Research Progress of Infrared Chalcogenide Glass Fibers in Sensing Fields[J]. Laser & Optoelectronics Progress, 2013, 50(2): 20010 Copy Citation Text show less
    References

    [1] Mao Xilai, Yang Peihong. Study of acousto-optic properties for Ge-As-S glass system[J]. Acta Optica Sinica, 1984, 4(4): 348~353

    [2] Liu Yongxing, Zhang Peiqing, Xu Yinsheng 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

    [3] Yi Changshen, Zhang Peiqing, Dai Shixun et al.. Research progress of large-mode area photonic crystal fibers[J]. Laser & Optoelectronics Progress, 2012, 49(10): 100001

    [4] Yang Qing, Shi Jielong, Sun Weisheng et al.. Low-loss splicing based on the technique of mode-field matching by fusion taper rig[J]. Acta Optica Sinica, 2012, 32(10): 1006001

    [5] B. Bureau, S. Maurugeon, F. Charpentier et al.. Chalcogenide glass fibers for infrared sensing and space optics[J]. Fiber and Integrated Optics, 2009, 28(1): 65~80

    [6] J. A. Harrington. A review of IR transmitting, hollow waveguides[J]. Fiber & Integrated Optics, 2000, 19(3): 211~227

    [7] J. Sanghera, I. Aggarwal. Active and passive chalcogenide glass optical fibers for IR applications: a review[J]. J. Non-Cryst. Solids, 1999, 256-257: 6~16

    [8] J. Sanghera, L. Shaw, P. Pureza et al.. Progress of chalcogenide glass fibers[C]. OFC, 2007. OWA2

    [9] B. Bureau, X. H. Zhang, F. Smektala et al.. Recent advances in chalcogenide glasses[J]. J. Non-Cryst. Solids, 2004, 345-346: 276~283

    [10] A. F. Kosolapov, A. D. Pryamikov, A. S. Biriukov et al. Demonstration of CO2 laser power delivery through chalcogenide-glass fiber with negative-curvature hollow core[J]. Opt. Express, 2011, 19(25): 25723~25728

    [11] E. Jurisova, L. Ladanyi, J. Mullerova. Spectral response of optical switches based on chalcogenide bistable fiber Bragg gratings[C]. ELEKTRO, 2012. 493~499

    [12] Dai Shixun, Lu Laiwei, Tao Guangming et al.. Research progress of glass microspheres for optical microcavity[J]. Laser & Optoelectronics Progress, 2012, 49(8): 080001

    [13] D. A. C. Compton, S. L. Hill, N. A. Wright et al.. In situ FT-IR analysis of a composite curing reaction using a mid-infrared transmitting optical fiber[J]. Appl. Spectrosc., 1988, 42(6): 972~979

    [14] J. Heo, M. Rodrigues, S. J. Saggese et al.. Remote fiber-optic chemical sensing using evanescent-wave interactions in chalcogenide glass fibers[J]. Appl. Opt., 1991, 30(27): 3944~3951

    [15] S. Hocdé, C. Boussard-Plédel, G. Fonteneau et al.. Recent developments in chemical sensing using infrared glass fibers[J]. J. Non-Cryst. Solids, 2000, 274(1): 17~22

    [16] S. Hocdé, C. Boussard-Plédel, G. Fonteneau et al.. Chalcogens based glasses for IR fiber chemical sensors[J]. Solid State Sci., 2001, 3(3): 279~284

    [17] J. L. Adam. Non-oxide glasses and their applications in optics[J]. J. Non-Cryst. Solids, 2001, 287(1): 401~404

    [18] F. Charpentier, B. Bureau, J. Troles et al.. Infrared monitoring of underground CO2 storage using chalcogenide glass fibers[J]. Opt. Mater., 2009, 31(3): 496~500

    [19] W. J. Yoo, J. K. Seo, D. H. Cho et al.. Chalcogenide optical fiber based sensor for non-invasive monitoring of respiration[C]. ISIEA 2009, 2009

    [20] F. Charpentier, B. Bureau, V. Nazabal et al.. Infrared optical sensor for CO2 detection[C]. SPIE, 2009, 7356: 735610

    [21] D. Le Coq, K. Michel, J. Keirsse et al.. Infrared glass fibers for in-situ sensing, chemical and biochemical reactions[J]. Comptes Rendus Chimie, 2002, 5(12): 907~913

    [22] J. Keirsse, C. Boussard-Plédel, O. Loreal et al.. IR optical fiber sensor for biomedical applications[J]. Vibrational Spectroscopy, 2003, 32(1): 23~32

    [23] J. Keirsse, C. Boussard-Plédel, O. Loreal et al.. Chalcogenide glass fibers used as biosensors[J]. J. Non-Cryst. Solids, 2003, 326-327: 430~433

    [24] K. Michel, B. Bureau, C. Pouvreau et al.. Development of a chalcogenide glass fiber device for in situ pollutant detection[J]. J. Non-Cryst. Solids, 2003, 326-327: 434~438

    [25] D. Le Coq, C. Boussard-Plédel, G. Fonteneau et al.. Chalcogenide double index fibers: fabrication, design, and application as a chemical sensor[J]. Mater. Res. Bulletin, 2003, 38(13): 1745~1754

    [26] L. Brilland, F. Charpentier, J. Troles et al.. Microstructured chalcogenide fibers for biological and chemical detection: case study: a CO2 sensor[C]. SPIE, 2009, 7503: 750358

    [27] Yang Peihong, Mao Xilai, Liu Jianrong. Chalcogenide glass IR fiber for temperature measurement[J]. Glass & Enamel, 1989, (1): 14~18

    [28] Yang Kewu, Wei Guosheng. IR image guide bundles with As-S glass fibers[J]. Appl. Opt., 1999, 20(1): 32~35

    [29] Zhang Zhenyuan, Ling Genhua. Infrared optical fibers made from chalcogenide glass[J]. Fiber Glass, 2005, (2): 22~28

    [30] K. Michel, B. Bureau, C. Boussard-Plédel et al.. Monitoring of pollutant in waste water by infrared spectroscopy using chalcogenide glass optical fibers[J]. Sensors and Actuators B, 2004, 101(1): 252~259

    [31] S. Maurugeon, B. Bureau, C. Boussard-Plédel et al.. Selenium modified GeTe4 based glasses optical fibers for far-infrared sensing[J]. Opt. Mater., 2011, 33(4): 660~663

    [32] M. Anne, E. Salle, B. Bureau et al.. Polymerisation of an industrial resin monitored by infrared fiber evanescent wave spectroscopy[J]. Sensors and Actuators B, 2009, 137(2): 687~691

    [33] Weng Shifu. Fourier Transform Infrared Spectroscopy[M]. Beijing: Chemical Industry Press, 2005. 239~287

    [34] A. Jha, X. Jiang, J. Lousteau et al.. Recent advances in mid-IR optical fibres for chemical and biological sensing in the 2~15 μm spectral range[C].SPIE, 2009, 7386: 73860v

    [35] P. Lucas, D. Le Coq, C. Juncker et al.. Evaluation of toxic agent effects on lung cells by fiber evanescent wave spectroscopy[J]. Appl. Spectrosc., 2005, 59(1): 1~9

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    Yin Dongmei, Dai Shixun, Wang Xunsi, Xu Yinsheng, Zhang Peiqing, Lin Changgui, Shen Xiang. Research Progress of Infrared Chalcogenide Glass Fibers in Sensing Fields[J]. Laser & Optoelectronics Progress, 2013, 50(2): 20010
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