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Precision ultrasound sensing on a chip

Quantum Physics 2019-01-17 v3 Applied Physics

Abstract

Ultrasound sensors have wide applications across science and technology. However, improved sensitivity is required for both miniaturisation and increased spatial resolution. Here, we introduce cavity optomechanical ultrasound sensing, where dual optical and mechanical resonances enhance the ultrasound signal. We achieve noise equivalent pressures of 8--300 μ\muPa/Hz\sqrt{\rm Hz} at kilohertz to megahertz frequencies in a microscale silicon-chip-based sensor with >>120 dB dynamic range. The sensitivity far exceeds similar sensors that use optical resonance alone and, normalised to sensing area, surpasses previous air-coupled ultrasound sensors by several orders of magnitude. The noise floor is, for the first time, dominated by collisions from molecules in the gas within which the acoustic wave propagates. This new approach to acoustic sensing could find applications ranging from biomedical diagnostics, to autonomous navigation, trace gas sensing, and scientific exploration of the life-induced-vibrations of single cells.

Keywords

Cite

@article{arxiv.1805.01940,
  title  = {Precision ultrasound sensing on a chip},
  author = {Sahar Basiri-Esfahani and Ardalan Armin and Stefan Forstner and Warwick P. Bowen},
  journal= {arXiv preprint arXiv:1805.01940},
  year   = {2019}
}

Comments

50 pages, 15 figures

R2 v1 2026-06-23T01:45:40.678Z