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February 12, 2026Micromachines2 citationsOpen Access

Design and Development of Sc0.2Al0.8N-Based Dual-Piezoelectric-Layer MEMS Hydrophone

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DCDanfeng CuiXDXiaoya DuanZGZiyue Guan

Key Points

  • This research aims to enhance the performance of MEMS hydrophones using a dual-piezoelectric design.
  • Developed a dual-piezoelectric-layer structure
  • Utilized scandium-doped aluminum nitride materials
  • Conducted underwater acoustic calibration tests
  • Achieved an average sound pressure sensitivity of −162 dB across 20 Hz–50 KHz
  • Observed an equivalent noise density of 47 dB
  • Demonstrated a linearity of 99% in performance

Abstract

An innovative design for a dual-piezoelectric-layer MEMS hydrophone based on a composite film of scandium-doped aluminum nitride (Sc0.2Al0.8N) is presented. By designing the dual piezoelectric layer, the frequency response range has been expanded and the sensitivity of the device has been significantly enhanced. Meanwhile, doping with scandium can significantly increase the piezoelectric coefficient, enhancing the sensitivity. According to the standard underwater acoustic calibration test, the device exhibits an average sound pressure sensitivity of −162 dB (re: 1 V/μPa) across the 20 Hz–50 KHz frequency band and equivalent noise density of 47 dB (re: 1 μPa/√Hz) with a linearity of 99%. The experimental results show that the comprehensive performance of the dual-piezoelectric-layer hydrophone provides a new solution for underwater sensing and detection, and opens up a new path for the performance optimization of passive sonar systems.

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Cite This Study

Cui et al. (2026) studied this question.

synapsesocial.com/papers/698d6f0d5be6419ac0d55203https://doi.org/10.3390/mi17020235
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