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January 14, 2026Light Science & Applications0 citationsOpen Access

Absolute thermometry based on Brillouin scattering in gases

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YYYuting YangMSMarcelo A. SotoLTLuc Thévenaz

Key Points

  • To establish a thermometric technique for absolute temperature measurement based on Brillouin scattering in gases.
  • Developed a novel method using acoustic velocity inferred from spectral shifts of a scattered laser beam.
  • Conducted experimental validation to assess the method's accuracy across varying temperature and pressure.
  • Analyzed the impact of gas species on the Brillouin response for optimized medium selection.
  • Achieved contactless temperature measurement with enhanced sensitivity in cryogenic ranges.
  • Demonstrated the potential for remote sensing applications using hollow-core single-mode fibres.
  • Provided a strong foundation for high-accuracy thermometric measurements in extreme cryogenic environments.

Abstract

Abstract We propose a novel thermometric technique for measuring absolute temperature in gas media based on Brillouin scattering. The method retrieves the temperature from the acoustic velocity of the gas, inferred through the spectral shift experienced by a scattered laser beam during the Brillouin acousto-optic interaction. This approach is inherently contactless, enabling remote sensing applications with high precision. It also exhibits enhanced sensitivity in the cryogenic range and is fully compatible with distributed measurements along recent hollow-core single-mode fibres. This study establishes the theoretical foundations of the technique and provides experimental validation across a range of temperature and pressure conditions. The influence of the gas species on the Brillouin response is analysed, enabling the selection of the optimal gas medium for specific applications. Illustrative distributed measurements demonstrate the strong potential of this technique for cryogenic sensing, where favourable scaling of several parameters leads to significantly improved temperature sensitivity. These results open new avenues for high-accuracy, remote, and minimally invasive thermometric measurements across a wide temperature range, including extreme cryogenic environments.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/6966f33213bf7a6f02c00fadhttps://doi.org/10.1038/s41377-025-02168-3
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