Chinese Journal of Lasers, Volume. 40, Issue 11, 1105001(2013)
Bandwidth Characteristics of Fiber Bragg Grating Fabricated with Femtosecond Laser Radiation
[1] [1] G Meltz, W W Morey, W H Glenn. Formation of Bragg gratings in optical fibers by a transverse holographic method[J]. Opt Lett, 1989, 14(15): 823-825.
[2] [2] N Matuschek, F X Kartner, U Keller. Exact coupled-mode theories for multilayer interference coatings with arbitrary strong index modulations[J]. IEEE J Quantum Electron, 1997, 33(3): 295-302.
[3] [3] S J Mihailov, C W Smelser, P Lu, et al.. Fibre Bragg gratings made with a phase mask and 800 nm femtosecond radiation[J]. Opt Lett, 2003, 28(12): 995-997.
[4] [4] D Grobnic, S J Mihailov, C W Smelser, et al.. Sapphire fibre Bragg grating sensor made using femtosecond laser radiation for ultrahigh temperature application[J]. IEEE Photon Technol Lett, 2004, 16(11): 2505-2507.
[5] [5] M Bernier, D Faucher, R Vallee, et al.. Bragg gratings photoinduced in ZBLAN fibres by femtosecond pulses at 800 nm[J]. Opt Lett, 2007, 32(5): 454-456.
[6] [6] Y Li, D N Wang, J Jin. Single-mode grating reflection in all-solid photonic bandgap fibers inscribed by use of femtosecond laser pulse irradiation through a phase mask[J]. Opt Lett, 2009, 34(8): 1264-1266.
[7] [7] J R Grenier, L A Fernandes, J S Aitchison, et al.. Femtosecond laser fabrication of phase-shifted Bragg grating waveguides in fused silica[J]. Opt Lett, 2012, 37(12): 2289-2291.
[8] [8] K Chah, D Kinet, M Wuilpart, et al.. Femtosecond-laser-induced highly birefringent Bragg gratings in standard optical fiber[J]. Opt Lett, 2013, 38(4): 594-596.
[9] [9] S L Tsao, J Wu, B C Yeh. High-resolution neural temperature sensor using fiber Bragg gratings[J]. IEEE J Quantum Electron, 1999, 35(11): 1590-1596.
[10] [10] Yang Xiufeng, Zhang Chunyu, Tong Zhengrong, et al.. Experimental research of temperature sensing properties of a novel fiber grating[J]. Chinese J Lasers, 2011, 38(4): 0405005.
[12] [12] Wang Yiping, Wang Ming, Huang Xiaoqin. Transverse pressure sensor based on the polarization properties of fiber grating[J]. Chinese J Lasers, 2011, 38(4): 0405004.
[13] [13] A Iadicicco, S Campopiano, A Cutolo, et al.. Refractive index sensor based on microstructured fiber Bragg grating[J]. IEEE Photon Technol Lett, 2005, 17(6): 1250-1252.
[14] [14] L V Hau, S E Harris, Z Dutton, et al.. Light speed reduction to 17 metres per second in an ultracold atomic gas[J]. Nature, 1999, 397(6720): 594-598.
[15] [15] M S Bigelow, N N Lepeshkin, R W Boyd. Observation of ultraslow light propagation in a ruby crystal at room temperature[J]. Phys Rev Lett, 2003, 90(11): 113903.
[16] [16] M S Bigelow, N N Lepeshkin, R W Boyd. Superluminal and slow light propagation in a room-temperature solid[J]. Science, 2003, 301(5630): 200-202.
[17] [17] P C Ku, F Sedgwick, C J Chang-Hasnain, et al.. Slow light in semiconductor quantum wells[J]. Opt Lett, 2004, 29(19): 2291-2293.
[18] [18] A Schweinsberg, N N Lepeshkin, M S Bigelow, et al.. Observation of superluminal and slow light propagation in erbium-doped optical fiber[J]. Europhys Lett, 2006, 73(2): 218-224.
[19] [19] K Y Song, K Hotate. 25 GHz bandwidth Brillouin slow light in optical fibers[J]. Opt Lett, 2007, 32(3): 217-219.
[20] [20] Wang Kuiru, Cheng Jielin, Chen Gong, et al.. Research on time-delay characteristics of solitons in fiber Bragg grating[J]. Acta Optica Sinica, 2011, 31(2): 0219001.
[21] [21] Zhang Zijia. Fiber Bragg Grating Theory Foundation and Sensing Technology[M]. Beijing: Science Press, 2009. 45-51.
[22] [22] S J Mihailov, C W Smelser, D Grobnic, et al.. Bragg gratings written in Al-SiO2 and Ge-doped core fibers with 800 nm femtosecond radiation and a phase mask[J]. J Lightwave Technol, 2004, 22(1): 94-100.
[23] [23] S J Mihailov, D Grobnic, C W Smelser, et al.. Induced Bragg gratings in optical fibers and waveguides using an ultrafast infrared laser and a phase mask[J]. Laser Chem, 2008, 2008. 416251.
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Yan Fei, Chen Tao, Cui Wei, Si Jinhai. Bandwidth Characteristics of Fiber Bragg Grating Fabricated with Femtosecond Laser Radiation[J]. Chinese Journal of Lasers, 2013, 40(11): 1105001
Category: Optical communication
Received: May. 27, 2013
Accepted: --
Published Online: Oct. 20, 2013
The Author Email: Fei Yan (yan_fei@stu.xjtu.edu.cn)