• Chinese Optics Letters
  • Vol. 21, Issue 2, 020603 (2023)
Jian Luo, Haoran Wang, Xun Cai, Zhengqian Luo*, and Hongyan Fu**
Author Affiliations
  • Department of Electronic Engineering, School of Electronic Science and Engineering (National Model Microelectronics College), Xiamen University, Xiamen 361005, China
  • show less
    DOI: 10.3788/COL202321.020603 Cite this Article Set citation alerts
    Jian Luo, Haoran Wang, Xun Cai, Zhengqian Luo, Hongyan Fu. Temperature-sensing scheme based on a passively mode-locked fiber laser via beat frequency demodulation[J]. Chinese Optics Letters, 2023, 21(2): 020603 Copy Citation Text show less
    References

    [1] Q. Chen, D. N. Wang, F. Gao. Simultaneous refractive index and temperature sensing based on a fiber surface waveguide and fiber Bragg gratings. Opt. Lett., 46, 1209(2021).

    [2] S. J. Mihailov. Fiber Bragg grating sensors for harsh environments. Sensors, 12, 1898(2012).

    [3] S. J. Mihailov, D. Grobnic, C. Hnatovsky, R. B. Walker, P. Lu, D. Coulas, H. Ding. Extreme environment sensing using femtosecond laser-inscribed fiber Bragg gratings. Sensors, 17, 2909(2017).

    [4] J. Militky, M. Kadulova, D. Ciprian, P. Hlubina. Fiber optic temperature sensing with enhanced sensitivity based on spectral interferometry. Opt. Fiber Technol., 33, 45(2017).

    [5] P. Cheng, L. Wang, Y. Pan, H. H. Yan, D. W. Gao, J. Wang, H. S. Zhang. Fiber Bragg grating temperature sensor of cladding with SrTiO3 thin film by pulsed laser deposition. Laser Phys., 29, 025107(2019).

    [6] X. Pan, Y. Dong, J. Zheng, J. Wen, F. Pang, Z. Chen, Y. Shang, T. Wang. Enhanced FBG temperature sensitivity in PbS-doped silica optical fiber. J. Light. Technol., 37, 4902(2019).

    [7] D. N. Wang. Review of femtosecond laser fabricated optical fiber high temperature sensors. Chin. Opt. Lett., 19, 091204(2021).

    [8] L. C. Li, L. Xia, Z. H. Xie, D. M. Liu. All-fiber Mach-Zehnder interferometers for sensing applications. Opt. Express, 20, 11109(2012).

    [9] T. Q. Liu, J. Wang, Y. P. Liao, X. Wang, S. S. Wang. All-fiber Mach-Zehnder interferometer for tunable two quasi-continuous points’ temperature sensing in seawater. Opt. Express, 26, 12277(2018).

    [10] Z. Zhang, Y. Y. Wang, M. Zhou, J. He, C. R. Liao, Y. P. Wang. Recent advance in hollow-core fiber high-temperature and high-pressure sensing technology. Chin. Opt. Lett., 19, 070601(2021).

    [11] L. G. Abbas, H. Li. Temperature sensing by hybrid interferometer based on Vernier like effect. Opt. Fiber Technol., 64, 102538(2021).

    [12] S. Wang, Y. W. Yang, P. T. Niu, S. Wu, S. H. Liu, R. B. Jin, P. X. Lu, X. W. Hu, N. L. Dai. Fiber tip Michelson interferometer for temperature sensing based on polymer-filled suspended core fiber. Opt. Laser Technol., 141, 107147(2021).

    [13] C. He, C. Zhou, Q. Zhou, S. Y. Xie, M. Z. Xiao, J. J. Tian, Y. Yao. Simultaneous measurement of strain and temperature using Fabry–Pérot interferometry and antiresonant mechanism in a hollow-core fiber. Chin. Opt. Lett., 19, 041201(2021).

    [14] K. Yang, J. He, Y. Wang, S. Liu, C. Liao, Z. Li, G. Yin, B. Sun, Y. Wang. Ultrasensitive temperature sensor based on a fiber Fabry–Pérot interferometer created in a mercury-filled silica tube. IEEE Photon. J., 7, 6803509(2015).

    [15] J. Zhang, H. Liao, P. Lu, X. Jiang, X. Fu, W. Ni, D. Liu, J. Zhang. Ultrasensitive temperature sensor with cascaded fiber optic Fabry–Perot interferometers based on Vernier effect. IEEE Photon. J., 10, 6803411(2018).

    [16] J. Mandal, S. Pal, S. Tong, K. T. V. Grattan, A. T. Augousti, S. A. Wade. Bragg grating-based fiber-optic laser probe for temperature sensing. IEEE Photon. Technol. Lett., 16, 218(2004).

    [17] M. A. Gonzalez-Reyna, E. Alvarado-Mendez, J. M. Estudillo-Ayala, E. Vargas-Rodriguez, M. E. Sosa-Morales, J. M. Sierra-Hernandez, D. Jauregui-Vazquez, R. Rojas-Laguna. Laser temperature sensor based on a fiber Bragg grating. IEEE Photon. Technol. Lett., 27, 1141(2015).

    [18] J. Shi, Y. Wang, D. Xu, H. Zhang, G. Su, L. Duan, C. Yan, D. Yan, S. Fu, J. Yao. Temperature sensor based on fiber ring laser with Sagnac loop. IEEE Photon. Technol. Lett., 28, 794(2016).

    [19] Z. Yin, L. Gao, S. Liu, L. Zhang, F. Wu, L. Chen, X. Chen. Fiber ring laser sensor for temperature measurement. J. Light. Technol., 28, 3403(2010).

    [20] L. Huang, P. Wang, L. Gao, T. T. Zhang, X. F. Chen. Multiplexed multi-longitudinal mode fiber laser sensor. Opt. Express, 22, 25722(2014).

    [21] X. J. Yu, X. Dong, X. F. Chen, J. T. Zhang, S. C. Liu. Polarimetric multilongitudinal mode fiber laser for simultaneous measurement of strain and temperature. J. Light. Technol., 34, 4941(2016).

    [22] Y. Liu, L. Ma, C. Yang, W. Tong, Z. He. Long-range Raman distributed temperature sensor with high spatial and temperature resolution using graded-index few-mode fiber. Opt. Express, 26, 20562(2018).

    [23] J. J. Tian, Z. G. Li, Y. X. Sun, Y. Yao. High-sensitivity fiber-optic strain sensor based on the Vernier effect and separated Fabry–Perot interferometers. J. Light. Technol., 37, 5609(2019).

    [24] J. Tian, M. J. Hou, Y. Jiang, H. Luo, C. Y. Tang. Fiber ring laser cavity for strain sensing via beat frequency demodulation. Opt. Commun., 476, 126326(2020).

    [25] J. Luo, X. Cai, H. R. Wang, H. Y. Fu. Temperature sensing technique by using a microwave photonics filter based on an actively mode-locked fiber laser. Microwave Opt. Technol. Lett., 63, 2535(2021).

    [26] S. Chang, C. C. Hsu, T. H. Huang, W. C. Chuang, Y. S. Tsai, J. Y. Shieh, C. Y. Leung. Heterodyne interferometric measurement of the thermo-optic coefficient of single mode fiber. Chin. J. Phys., 38, 437(2010).

    [27] L. Huang, L. Qian, L. Chen, L. Gao, X. Chen. Multilongitudinal mode fiber laser sensor for temperature measurement. Asia Communications and Photonics Conference (ACP), 1(2012).

    [28] X. X. Tong, Y. X. Shen, X. W. Mao, C. Yu, Y. Guo. Fiber-optic temperature sensor based on beat frequency and neural network algorithm. Opt. Fiber Technol., 68, 102783(2022).

    [29] W. H. Lin, L. Y. Shao, M. I. Vai, P. P. Shum, S. Q. Liu, Y. B. Liu, F. Zhao, D. R. Xiao, Y. H. Liu, Y. D. Tan, W. Z. Wang. In-fiber Mach–Zehnder interferometer sensor based on Er doped fiber peanut structure in fiber ring laser. J. Light. Technol., 39, 3350(2021).

    [30] B. Yin, S. H. Wu, M. G. Wang, W. Q. Liu, H. S. Li, B. L. Wu, Q. C. Wang. High-sensitivity refractive index and temperature sensor based on cascaded dual-wavelength fiber laser and SNHNS interferometer. Opt. Express, 27, 252(2019).

    Data from CrossRef

    [1] D. Jauregui-Vazquez, J. A. Alvarez-Chavez, T. Lozano-Hernandez, J. M. Estudillo-Ayala, J. M. Sierra-Hernandez, H. L. Offerhaus. Fiber Laser Sensor Configurations for Refractive Index, Temperature and Strain: A Review. Photonics, 10, 495(2023).

    Jian Luo, Haoran Wang, Xun Cai, Zhengqian Luo, Hongyan Fu. Temperature-sensing scheme based on a passively mode-locked fiber laser via beat frequency demodulation[J]. Chinese Optics Letters, 2023, 21(2): 020603
    Download Citation