AI Article Synopsis

  • Temperature measurement is crucial in various fields like industry, science, medicine, and food production, leading to a need for advanced temperature sensors that offer high sensitivity and fast response times.
  • This work introduces a highly sensitive fiber optic temperature sensor, known as the double-cavity Fabry-Perot interferometer (DCFPI), which leverages the Vernier effect to enhance temperature sensitivity up to 39.8 nm/°C.
  • The DCFPI features a simple design using a semi-spherical polymer cap and is mounted in a movable setup for easy adjustments and protection of the sensor components.

Article Abstract

Temperature measuring is a daily procedure carried out worldwide in practically all environments of human activity, but it takes particular relevance in industrial, scientific, medical, and food processing and production areas. The characteristics and performance of the temperature sensors required for such a large universe of applications have opened the opportunity for a comprehensive range of technologies and architectures capable of fulfilling the sensitivity, resolution, dynamic range, and response time demanded. In this work, a highly sensitive fiber optic temperature sensor based on a double-cavity Fabry-Perot interferometer (DCFPI) is proposed and demonstrated. Taking advantage of the Vernier effect, we demonstrate that it is possible to improve the temperature sensitivity exhibited by the polymer-capped fiber Fabry-Perot interferometer (PCFPI) up to 39.8 nm/°C. The DCFPI is sturdy, reconfigured, and simple to fabricate, consisting of a semi-spherical polymer cap added to the surface of the ferrule of a commercial single-mode fiber connector (SMF FC/PC) placed in front of a mirror at a proper distance. The length of the air cavity () was adjusted to equal the thickness of the polymer cap () plus a distance to generate the most convenient Vernier effect spectrum. The DCFPI was packaged in a machined, movable mount that allows the adjustment of the air cavity length easily but also protects the polymer cap and simplifies the manipulation of the sensor head.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10708411PMC
http://dx.doi.org/10.3390/polym15234567DOI Listing

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