4.7 Article

Quartz-enhanced photoacoustic spectroscopy employing pilot line manufactured custom tuning forks

Journal

PHOTOACOUSTICS
Volume 17, Issue -, Pages -

Publisher

ELSEVIER GMBH
DOI: 10.1016/j.pacs.2019.100158

Keywords

Photoacoustic spectroscopy; Photoacoustic detection; Gas sensing; Quartz tuning fork

Funding

  1. National Natural Science Foundation of China [61675092, 61601404, 61705086]
  2. Natural Science Foundation of Guangdong Province [2016A030313079, 2016A030310098, 2016A030311019, 2019A1515011380]
  3. Special Funds for Major Science and Technology Projects of Guangdong Province [2019B010138004, 2015B010125007]
  4. Project of Guangzhou Industry Leading Talents [CXLJTD-201607]
  5. Planned Science AMP
  6. Technology Project of Guangzhou [2017A010102006, 2016A010101017, 2016B010111003, 201506010046]
  7. Ministry of Education of China [6141A02022124]
  8. Aeronautical Science Foundation of China [201708W4001]
  9. Foundation for Distinguished Young Talents in Higher Education of Guangdong [2018KQNCX009, 2018KQNCX279]
  10. Fundamental Research Funds for the Central Universities [21619402]
  11. State Key Laboratory of Applied Optics [SKLAO-201914]
  12. US National Science Foundation (NSF) ERC MIRTHE award
  13. NSF NeTS Large ASTRO award [R3H685]
  14. Welch Foundation [C-0586]

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Pilot line manufactured custom quartz tuning forks (QTFs) with a resonance frequency of 28 kHz and a Q value of > 30, 000 in a vacuum and similar to 7500 in the air, were designed and produced for trace gas sensing based on quartz enhanced photoacoustic spectroscopy (QEPAS). The pilot line was able to produce hundreds of low-frequency custom QTFs with small frequency shift < 10 ppm, benefiting the detecting of molecules with slow vibrational-translational (V-T) relaxation rates. An Au film with a thickness of 600 nm were deposited on both sides of QTF to enhance the piezoelectric charge collection efficiency and reduce the environmental electromagnetic noise. The laser focus position and modulation depth were optimized. With an integration time of 84 s, a normalized noise equivalent absorption (NNEA) coefficient of 1.7x10(-8) cm(-1).W.Hz(-1/2) was achieved which is similar to 10 times higher than a commercially available QTF with a resonance frequency of 32 kHz.

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