• Laser & Optoelectronics Progress
  • Vol. 49, Issue 1, 10005 (2012)
Chen Yixin*, Zhao Chunliu, Liu Xing, Gong Huaping, and Dong Xinyong
Author Affiliations
  • [in Chinese]
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    DOI: 10.3788/lop49.010005 Cite this Article Set citation alerts
    Chen Yixin, Zhao Chunliu, Liu Xing, Gong Huaping, Dong Xinyong. Research and Development of Optical Fiber Sensors Based on Photonic Crystal Fiber Loop Mirrors[J]. Laser & Optoelectronics Progress, 2012, 49(1): 10005 Copy Citation Text show less
    References

    [1] P. Kaiser, H.-W Astle. Low loss single material fibers made from pure fused silica [J]. Bell Syst. Technol., 1974, 53(6): 1021~1039

    [2] T.-A. Birks, J.-C. Knight, P. S. J. Russell. Endlessly single-mode photonic crystal fiber [J]. Opt. Lett., 1997, 22(13): 961~963

    [3] A.-V. Husakou, J. Hermann. Supercontinuum generation, four wave mixing, and fission of higher order solitons in photonic crystal fibers [J]. J. Opt. Soc. Am. B, 2002, 19(9): 2171~2182

    [4] Liu Bowen, Hu Minglie, Song Youjian et al.. 39 fs, 16 W all photonic crystal fiber laser system [J]. Chinese J. Lasers, 2008, 35(6): 811~814

    [5] Li Honglei, Lou Shuqin, Guo Tieying et al.. Low loss fusion splicing of germanium doped core photonic crystal fiber and standard single mode fiber [J]. Chinese J. Lasers, 2010, 37(6): 1589~1593

    [6] C.-L. Zhao, Z.-H. Li, X.-F. Yang et al.. Effect of a nonlinear photonic crystal fiber on the noise characterization of a distributed Raman amplifier [J]. IEEE Photon. Technol. Lett., 2005, 17(3): 561~563

    [7] Zhao Chunliu. Optical fiber sensors based on long period gratings in photonic crystal fibers [J]. J. Optoelectronics·Lasers, 2011, 22(1): 9~12

    [8] Tao Zaihong, Chang Jianhua, Wu Xuhua. Discrete optical Raman amplifier based on photonic crystal friber [J]. Chinese J. Lasers, 2008, 35(s2): 50~53

    [9] Yu Xianlun, Zhao Wwiwei, Cheng Wei. Research of high-pressure photonic crystal fibers sensors[J]. Chinese J. Lasers, 2009, 36(8): 2057~2063

    [10] C.-L. Zhao, X.-F. Yang, C. Lu et al.. Temperature insensitive interferometer using a highly birefringent photonic crystal fiber loop mirror [J]. IEEE Photon. Technol. Lett., 2004, 16(11): 2535~2537

    [11] X.-F. Yang, C.-L. Zhao, Q.-Z. Peng et al.. FBG sensor interrogation with high temperature insensitivity by using a HiBi-PCF Sagnac loop filter [J]. Opt. Commun., 2005, 250(1-3): 63~68

    [12] S.-P. Li, K.-S. Chiang, W.-A. Gambling. Gain flattening of an erbium-doped fiber amplifier using a high-birefringence fiber loop mirror [J]. IEEE Photon. Technol. Lett., 2001, 13(9): 942~944

    [13] Y.-G. Liu, B. Liu, X.-H. Feng et al.. High-birefringence fiber loop mirrors and their applications as sensors [J]. Appl. Opt., 2005, 44(12): 2382~2390

    [14] L.-B. Yuan, W. Jin, L.-M Zhou et al.. Enhancement of multiplexing capability of low-coherence interferometric fiber sensor array by use of a loop topology [J]. J. Lightwave Technol., 2003, 21(5): 1313~1319

    [15] X.-Y. Dong, H.-Y. Tam, P. Shum. Temperature-insensitive strain sensor with polarization-maintaining photonic crystal fiber based Sagnac interferometer [J]. Appl. Phys. Lett., 2007, 90(15): 151113

    [16] Qian Wenwen, Zhao Chunliu, Dong Xinyong et al.. Intensity measurement of a temperature insensitive strain sensor based on a highly birefringent photonic crystal fiber loop [J]. J. Optoelectronics·Laser, 2010, 21(9): 1273~1279

    [17] H.-Y. Fu, H.-Y. Tam, L.-Y. Shao et al.. Presure sensor realized with polarization-maintaining photonic crystal fiber-based Sagnac interferometer [J]. Appl. Opt., 2008, 47(15): 2835~2839

    [18] W.-W. Qian, C.-L. Zhao, S.-L. He et al.. High-sensitivity temperature sensor based on an alcohol-filled photonic crystal fiber loop mirror [J]. Opt. Lett., 2011, 36(9): 1548~1550

    [19] H.-P. Gong, C.-C. Chan, L.-H. Chen et al.. Strain sensor realized by using low-birefringence photonic crystal fiber based Sagnac loop [J]. IEEE Photon. Technol. Lett., 2010, 22(16): 1238~1240

    [20] H.-P. Gong, C.-C. Chan, P. Zu et al.. Curvature measurement by using low-birefringence photonic crystal fiber based Sagnac loop [J]. Opt. Commun., 2010, 283(16): 3142~3144

    [21] P. Zu, C.-C. Chan, Y.-X. Jin et al.. A temperature-insensitive twist sensor by using low-birefringence photonic crystal fiber based Sagnac interferometer [J]. IEEE Photon. Technol. Lett., 2011, 23(13): 920~922

    [22] V. Vali, R.-W. Shorthill. Fiber ring interferometer [J]. Appl. Opt., 1976, 15(5): 1099~1103

    [23] D. B. Mortimore. Fiber loop reflectors [J]. J. Lightwave Technol., 1988, 6(7): 1217~1224

    [24] X. Fang, R.-O. Claus. Polarization-independent all-fiber wavelength division multiplexer based on a Sagnac interferometer [J]. Opt. Lett., 1995, 20(20): 2146~2148

    [25] H.-M. Kim, T.-H. Kim, B. Kim et al.. Temperature-insensitive torsion sensor with enhanced sensitivity by use of a highly birefringent photonic crystal fiber [J]. IEEE Photon. Technol. Lett., 2010, 22(20): 1539~1541

    [26] O. Frazao, S.-O. Silva, J.-M. Baptista et al.. Simultaneous measurement of multiparameters using a Sagnac interferometer with polarization maintaining side-hole fiber [J]. Appl. Opt., 2008, 47(27): 4841~4848

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    Chen Yixin, Zhao Chunliu, Liu Xing, Gong Huaping, Dong Xinyong. Research and Development of Optical Fiber Sensors Based on Photonic Crystal Fiber Loop Mirrors[J]. Laser & Optoelectronics Progress, 2012, 49(1): 10005
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