• Infrared and Laser Engineering
  • Vol. 51, Issue 10, 20220535 (2022)
Miaoxin Bai, Liyang Jin, Jiali Li, Jing Chai, Leilei Shi, and Tao Zhu
Author Affiliations
  • Key Laboratory of Optoelectronic Technology & Systems (Education Ministry of China), Chongqing University, Chongqing 400044, China
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    DOI: 10.3788/IRLA20220535 Cite this Article
    Miaoxin Bai, Liyang Jin, Jiali Li, Jing Chai, Leilei Shi, Tao Zhu. Highly sensitive temperature sensor based on polymer spherical microcavity (invited)[J]. Infrared and Laser Engineering, 2022, 51(10): 20220535 Copy Citation Text show less
    Schematic diagram of the tapered fiber coupled microsphere cavity
    Fig. 1. Schematic diagram of the tapered fiber coupled microsphere cavity
    (a) Resonant spectrum of the microsphere cavity obtained by the finite-difference time-domain method; (b) Whispering gallery mode field distribution at the resonant wavelength 1551.47 nm
    Fig. 2. (a) Resonant spectrum of the microsphere cavity obtained by the finite-difference time-domain method; (b) Whispering gallery mode field distribution at the resonant wavelength 1551.47 nm
    Schematic diagram of the tapered fiber coupled PMMA microsphere cavity packaging process: (a) Placing a low-index rubber gasket on the TEC; (b) Fixing the tapered optical fiber on the gasket; (c) Transferring a PMMA microsphere cavity to the waist of the tapered fiber and then packaging them together by spot curing; (d) Coating and curing the whole device with the low refractive index adhesive
    Fig. 3. Schematic diagram of the tapered fiber coupled PMMA microsphere cavity packaging process: (a) Placing a low-index rubber gasket on the TEC; (b) Fixing the tapered optical fiber on the gasket; (c) Transferring a PMMA microsphere cavity to the waist of the tapered fiber and then packaging them together by spot curing; (d) Coating and curing the whole device with the low refractive index adhesive
    Schematic diagram of experimental setup for measuring the temperature response of the PMMA microsphere cavity
    Fig. 4. Schematic diagram of experimental setup for measuring the temperature response of the PMMA microsphere cavity
    (a) Resonant spectrum of the PMMA microsphere with a diameter of 85 μm in the range from 1535 nm to 1565 nm; (b) Resonant spectra of the PMMA microsphere under different temperatures; (c) The details of the spectra around 1559.7 nm in (b); (d) Wavelength shift of the PMMA microsphere with respect to temperature
    Fig. 5. (a) Resonant spectrum of the PMMA microsphere with a diameter of 85 μm in the range from 1535 nm to 1565 nm; (b) Resonant spectra of the PMMA microsphere under different temperatures; (c) The details of the spectra around 1559.7 nm in (b); (d) Wavelength shift of the PMMA microsphere with respect to temperature
    (a) Resonant spectrum of the PMMA microsphere with a diameter of 102 μm in the range from 1535 nm to 1565 nm; (b) Resonant spectra of the PMMA microsphere under different temperatures; (c) The details of the spectra around 1560.5 nm in (b); (d) Wavelength shift of the PMMA microsphere with respect to temperature
    Fig. 6. (a) Resonant spectrum of the PMMA microsphere with a diameter of 102 μm in the range from 1535 nm to 1565 nm; (b) Resonant spectra of the PMMA microsphere under different temperatures; (c) The details of the spectra around 1560.5 nm in (b); (d) Wavelength shift of the PMMA microsphere with respect to temperature
    Miaoxin Bai, Liyang Jin, Jiali Li, Jing Chai, Leilei Shi, Tao Zhu. Highly sensitive temperature sensor based on polymer spherical microcavity (invited)[J]. Infrared and Laser Engineering, 2022, 51(10): 20220535
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