• Chinese Journal of Lasers
  • Vol. 50, Issue 19, 1906001 (2023)
Xinran Dong1, Zian Wang1, Li Zeng2、3, and Xiaoyan Sun2、3、*
Author Affiliations
  • 1College of Mechanical and Electrical Engineering, Central South University of Forestry and Technology, Changsha 410018, Hunan , China
  • 2State Key Laboratory of High Performance Complex Manufacturing, College of Mechanical and Electrical Engineering, Central South University, Changsha 410083, Hunan , China
  • 3State Key Laboratory of High Performance Complex Manufacturing, Central South University, Changsha 410083, Hunan , China
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    DOI: 10.3788/CJL221198 Cite this Article Set citation alerts
    Xinran Dong, Zian Wang, Li Zeng, Xiaoyan Sun. Reflection Spectral Characteristics of Bragg Gratings Fabricated via Femtosecond Laser Phase Mask Technique[J]. Chinese Journal of Lasers, 2023, 50(19): 1906001 Copy Citation Text show less
    References

    [1] Hill K O, Fujii Y, Johnson D C et al. Photosensitivity in optical fiber waveguides: application to reflection filter fabrication[J]. Applied Physics Letters, 32, 647-649(1978).

    [2] Wang W L, Yan F P, Zhang L N. Wavelength-switchable single-longitudinal-mode thulium-doped fibre laser with multi-channel FP-FBG[J]. Chinese Journal of Lasers, 48, 2101001(2021).

    [3] Li Y J, Wang Z F, Wang J et al. Damage identification of I-beam based on fiber Bragg grating vibration sensor and extreme learning machine[J]. Chinese Journal of Lasers, 48, 1610004(2021).

    [4] Sahota J K, Gupta N, Dhawan D. Fiber Bragg grating sensors for monitoring of physical parameters: a comprehensive review[J]. Optical Engineering, 59, 060901(2020).

    [5] Liu Y C, Badcock R A, Fang X Y et al. Selecting of FBG coatings for quench detection in HTS coils[J]. IEEE Transactions on Applied Superconductivity, 28, 9500305(2018).

    [6] Liu Y C, Mataira R, Badcock R et al. Application of epoxy-bonded FBG temperature sensors for high-temperature superconductor-coated conductor quench detection[J]. IEEE Transactions on Applied Superconductivity, 31, 4700308(2021).

    [7] Liao C R, He J, Wang Y P. Study on high temperature sensors based on fiber Bragg gratings fabricated by femtosecond laser[J]. Acta Optica Sinica, 38, 0328009(2018).

    [8] Ghosh C, Priye V. Highly sensitive FBG strain sensor with enhanced measurement range based on higher order FWM[J]. IEEE Photonics Journal, 12, 6800407(2020).

    [9] Wang J, Peng G D, Hu Z L et al. Design and analysis of a high sensitivity FBG accelerometer based on local strain amplification[J]. IEEE Sensors Journal, 15, 5442-5449(2015).

    [10] Ahmed F, Ahsani V, Saad A et al. Bragg grating embedded in Mach-Zehnder interferometer for refractive index and temperature sensing[J]. IEEE Photonics Technology Letters, 28, 1968-1971(2016).

    [11] Gouveia C, Jorge P A S, Baptista J M et al. Fabry-Pérot cavity based on a high-birefringent fiber Bragg grating for refractive index and temperature measurement[J]. IEEE Sensors Journal, 12, 17-21(2012).

    [12] Xu X Z, He J, He J et al. Slit beam shaping for femtosecond laser point-by-point inscription of high-quality fiber Bragg gratings[J]. Journal of Lightwave Technology, 39, 5142-5148(2021).

    [13] Yang K M, Liao C R, Liu S et al. Optical fiber tag based on an encoded fiber Bragg grating fabricated by femtosecond laser[J]. Journal of Lightwave Technology, 38, 1474-1479(2020).

    [14] Przhiialkovskii D V, Butov O V. High-precision point-by-point fiber Bragg grating inscription[J]. Results in Physics, 30, 104902(2021).

    [15] Zheng Y, Yu H H, Guo H Y et al. Analysis of the spectrum distortions of weak fiber Bragg gratings fabricated in-line on a draw tower by the phase mask technique[J]. Journal of Lightwave Technology, 33, 2670-2673(2015).

    [16] Qiu Y, Sheng Y L, Beaulieu C. Optimal phase mask for fiber Bragg grating fabrication[J]. Journal of Lightwave Technology, 17, 2366(1999).

    [17] Meltz G, Morey W W, Glenn W H. Formation of Bragg gratings in optical fibers by a transverse holographic method[J]. Optics Letters, 14, 823-825(1989).

    [18] Wang J, Lin C P, Liao C R et al. Bragg resonance in microfiber realized by two-photon polymerization[J]. Optics Express, 26, 3732-3737(2018).

    [19] Smelser C W, Mihailov S J, Grobnic D. Formation of Type I-IR and Type II-IR gratings with an ultrafast IR laser and a phase mask[J]. Optics Express, 13, 5377-5386(2005).

    [20] Gattass R R, Mazur E. Femtosecond laser micromachining in transparent materials[J]. Nature Photonics, 2, 219-225(2008).

    [21] Jia X S, Chen Y Q, Liu L et al. Combined pulse laser: reliable tool for high-quality, high-efficiency material processing[J]. Optics & Laser Technology, 153, 108209(2022).

    [22] Vengsarkar A M, Lemaire P J, Judkins J B et al. Long-period fiber gratings as band-rejection filters[J]. Journal of Lightwave Technology, 14, 58-65(1996).

    [23] Grobnic D, Smelser C W, Mihailov S J et al. Long-term thermal stability tests at 1000 ℃ of silica fibre Bragg gratings made with ultrafast laser radiation[J]. Measurement Science and Technology, 17, 1009-1013(2006).

    [24] Li Y H, Liao C R, Wang D N et al. Study of spectral and annealing properties of fiber Bragg gratings written in H2-free and H2-loaded fibers by use of femtosecond laser pulses[J]. Optics Express, 16, 21239-21247(2008).

    [25] Erdogan T. Fiber grating spectra[J]. Journal of Lightwave Technology, 15, 1277-1294(1997).

    [26] Rao Y J, Wang Y P, Zhu T[M]. Principle and application of fiber grating, 111-117(2006).

    [27] Kogelnik H. Filter response of nonuniform almost-periodic structures[J]. The Bell System Technical Journal, 55, 109-126(1976).

    [28] Fertein E, Przygodzki C, Delbarre H et al. Refractive-index changes of standard telecommunication fiber through exposure to femtosecond laser pulses at 810 cm[J]. Applied Optics, 40, 3506-3508(2001).

    Xinran Dong, Zian Wang, Li Zeng, Xiaoyan Sun. Reflection Spectral Characteristics of Bragg Gratings Fabricated via Femtosecond Laser Phase Mask Technique[J]. Chinese Journal of Lasers, 2023, 50(19): 1906001
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