A novel microscale multilayer PZT MEMS cantilever for resonant photoacoustic gas sensing

This paper reports a novel photoacoustic spectroscopy (PAS) gas sensor based on micro-electro-mechanical systems (MEMS) that achieves resonance matching between a multilayer PZT piezoelectric microcantilever and an H-type acoustic resonator. The device integrates the PZT thin film and exhibits a measured mechanical resonance at 5003.3 Hz with a 3-dB bandwidth of 33.74 Hz. To the best of our knowledge, the proposed device represents one of the most miniaturized thin-film piezoelectric cantilevers reported for PAS gas sensing, with active dimensions of only 1039 μm × 250 μm × 6.43 μm. An H-type photoacoustic cell is designed to align its resonance with the cantilever. Using C 2 H 2 as a sample gas, the measured results show a linear responsivity of 2.41 μV/ppm over the concentration range of 229.8–5000 ppm, with an excellent linearity of 0.999. Allan deviation analysis of the pure nitrogen background indicates a minimum detection limit (MDL) of 477 ppb at an integration time of 265 s, corresponding to a conventional NNEA of 14.39×10 -8 cm -1 ·W·Hz -1/2 . A novel metric identified as flexural-compliance-adjusted NNEA (FCA-NNEA) is further introduced to indicate the extent to which the achieved detection performance benefits from the flexural compliance of the cantilever. The proposed device achieves an FCA-NNEA of 0.859 cm -1 ·W·Hz -1/2 ·mm, indicating competitive performance without relying on an extremely compliant cantilever. Together with its microscale dimensions, these results demonstrate a promising route toward compact MEMS PAS sensing.

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Publication Details

Journal
Photoacoustics
Published
2026-10-01
DOI
https://doi.org/10.1016/j.pacs.2026.100889
Primary Topic
Spectroscopy and Laser Applications
Type
article
Field-Weighted Citation Impact
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A novel microscale multilayer PZT MEMS cantilever for resonant photoacoustic gas sensing

Fupeng Wang, Gang‐Ding Peng, Aron Michael, Shan Lin et al.
Photoacoustics
Spectroscopy and Laser Applications
article

A novel microscale multilayer PZT MEMS cantilever for resonant photoacoustic gas sensing

Fupeng Wang, Gang‐Ding Peng, Aron Michael, Shan Lin, Yinghang Jiao, Yongkang Gong
article en

Abstract

This paper reports a novel photoacoustic spectroscopy (PAS) gas sensor based on micro-electro-mechanical systems (MEMS) that achieves resonance matching between a multilayer PZT piezoelectric microcantilever and an H-type acoustic resonator. The device integrates the PZT thin film and exhibits a measured mechanical resonance at 5003.3 Hz with a 3-dB bandwidth of 33.74 Hz. To the best of our knowledge, the proposed device represents one of the most miniaturized thin-film piezoelectric cantilevers reported for PAS gas sensing, with active dimensions of only 1039 μm × 250 μm × 6.43 μm. An H-type photoacoustic cell is designed to align its resonance with the cantilever. Using C 2 H 2 as a sample gas, the measured results show a linear responsivity of 2.41 μV/ppm over the concentration range of 229.8–5000 ppm, with an excellent linearity of 0.999. Allan deviation analysis of the pure nitrogen background indicates a minimum detection limit (MDL) of 477 ppb at an integration time of 265 s, corresponding to a conventional NNEA of 14.39×10 -8 cm -1 ·W·Hz -1/2 . A novel metric identified as flexural-compliance-adjusted NNEA (FCA-NNEA) is further introduced to indicate the extent to which the achieved detection performance benefits from the flexural compliance of the cantilever. The proposed device achieves an FCA-NNEA of 0.859 cm -1 ·W·Hz -1/2 ·mm, indicating competitive performance without relying on an extremely compliant cantilever. Together with its microscale dimensions, these results demonstrate a promising route toward compact MEMS PAS sensing.

Photoacoustics
UNSW Sydney (AU), Ocean University of China (CN)
Openalex Percentile: Top 23%
Spectroscopy and Laser Applications
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A novel microscale multilayer PZT MEMS cantilever for resonant photoacoustic gas sensing — Fupeng Wang, Gang‐Ding Peng, et al. · Photoacoustics (2026) | TGRS Research Map | TGRS