Abstract
In this paper, a new concept of forward-pumped random Raman fiber laser (RRFL)-based liquid refractive index sensing is proposed for the first time. For liquid refractive index sensing, the flat fiber end immersed in the liquid can act as the point reflector for generating random fiber lasing and also as the sensing head. Due to the high sensitivity of the output power of the RRFL to the reflectivity provided by the point reflector in the ultralow reflectivity regime, the proposed RRFL is capable of achieving liquid refractive index sensing by measuring the random lasing output power. We theoretically investigate the effects of the operating pump power and fiber length on the refractive index sensitivity for the proposed RRFL. As a proof-of-concept demonstration, we experimentally realize high-sensitivity half-open short-cavity RRFL-based liquid refractive index sensing with the maximum sensitivity and the sensing resolution of–39.88W/RIU and 2.5075×10−5 RIU, respectively. We also experimentally verify that the refractive index sensitivity can be enhanced with the shorter fiber length of the RRFL. This work extends the application of the random fiber laser as a new platform for highly-sensitive refractive index sensing in chemical, biomedical, and environmental monitoring applications, etc.
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Acknowledgment
This work is supported by the Natural Science Foundation of Hebei Province (Grant Nos. F2023501008 and F2020501040), the Fundamental Research Funds for the Central Universities (Grant No. N2323017), the National Natural Science Foundation of China (Grant No. 62005186), and the Engineering Featured Team Fund of Sichuan University (Grant No. 2020SCUNG105).
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Han, B., Ma, Y., Wu, H. et al. Random Raman Fiber Laser as a Liquid Refractive Index Sensor. Photonic Sens 14, 240121 (2024). https://doi.org/10.1007/s13320-023-0697-6
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DOI: https://doi.org/10.1007/s13320-023-0697-6