Research progress on quartz-enhanced photoacoustic spectroscopy
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1National Key Laboratory of Laser Spatial Information, Harbin Institute of Technology, Harbin Heilongjiang 150001, China;2Zhengzhou Advanced Research Institute, Harbin Institute of Technology, Zhengzhou Henan 450008, China

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    Abstract:

    Quartz-enhanced photoacoustic spectroscopy (QEPAS) was first proposed in 2002 and has emerged as a landmark technique for trace gas detection. This technique employs a quartz tuning fork (QTF) as the acoustic transducer, replacing the broadband microphone used in conventional photoacoustic spectroscopy (PAS) systems. QEPAS not only preserves the intrinsic advantages of conventional PAS, such as wavelength-independent operation and zero-background detection, but also offers significant improvements in system integration, cost effectiveness, immunity to electromagnetic interference, and detection sensitivity. Over the past two decades, QEPAS has undergone rapid development, with detection limits for various target gases reaching the part-per-billion (ppb) level. This review systematically summarizes the physical mechanisms and fundamental principles of QEPAS, and further discusses several key innovation directions, including the integration and optimization of advanced laser sources, the design of custom tuning forks, and the performance enhancement of acoustic micro-resonators. On this basis, the major technical bottlenecks and challenges currently faced by QEPAS are analyzed, and future development trends are discussed.

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History
  • Received:July 06,2026
  • Revised:August 17,2026
  • Adopted:August 18,2026
  • Online: August 18,2026
  • Published:
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