4.4 Article

Flexible dual-mode surface acoustic wave strain sensor based on crystalline LiNbO3 thin film

Journal

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1361-6439/aaf5b7

Keywords

surface acoustic wave; flexible strain sensor; LiNbO3 thin film; dual modes; temperature cancellation

Funding

  1. National Natural Science Foundation of China [U1613202, U1609210, 61674172]
  2. Zhejiang Province Key Research and Development Project [2018C01037]
  3. Zhejiang Provincial Natural Science Foundation of China [LY17F010023]

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This work presents the development of flexible dual-mode surface acoustic wave (SAW) sensor based on single crystalline thin film lithium niobate (TF-LN). Numerical modeling is conducted to investigate the SAW propagation and the effects on strain sensitivity. The dependence of strain sensitivity on angles between the applied strain and SAW propagation direction is analyzed numerically and experimentally, showing that the maximum strain sensitivity is at 45 degrees rather than longitudinal direction. 128 degrees Y-cut TF-LN (similar to 50 mu m), obtained by micromachining technique, is utilized as the piezoelectric substrate to fabricate the SAW strain sensors with dual-mode, namely Rayleigh mode and thickness shear mode. The sensor has excellent flexibility and demonstrates remarkable capability for an ultra-wide range strain measurement up to +/- 3000 mu epsilon. Temperature effects on resonant frequency and strain sensitivity are investigated in the range of 25 degrees C-100 degrees C, and similar temperature characteristics are observed for the dual modes. A method of beat frequency between the dual modes is introduced which is able to eliminate the temperature effect on strain sensing, an on-chip temperature influence removing capability. All the results clearly show that this sensor exhibits great potential for applications in flexible electronics and microsystems.

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