Design and Modeling of CMUTs With T-Shape Cavities for Low Working Voltage, High Ultrasound Transmission and Reception
作者:Zhikang Li, Shaohui Qin, Jiawei Yuan, Jie Li, Yihe Zhao, Hongqiang Tan, Zixuan Li, Zheng Yuan, Ruiyan Luo, Hefeng Qin, Min Li, Libo Zhao · 发表于:IEEE Sensors Journal · 年份:2025 · DOI:10.1109/jsen.2025.3570460 · 被引用次数:3 · 研究领域:Wireless Power Transfer Systems、Engineering Applied Research
Low-voltage, high-performance capacitive micromachined ultrasonic transducers (CMUTs) are in urgent demand for portable ultrasound imaging and human-machine interfaces. However, most existing CMUTs exhibit superior comprehensive performance due to conflicting requirements in their structural design, which constrains their practical applications. This paper proposes a novel CMUT with T-shape cavities to achieve synergistic enhancement of multiple key performances by harnessing the electrostatic stiffness softening effect (ESSE). The unique T-shape cavity design features a smaller electrode distance in the peripheral area compared to the central area, which produces a higher electric field intensity and thus a larger membrane stiffness drop in the peripheral area of the vibrating membrane through the corresponding enhancement of ESSE. This special stiffness adjustment strategy ultimately enables the entire membrane to produce piston-like deformation, significantly improving both the maximum and average membrane deformation, and contributing to enhancements in operation voltage, transmitting and receiving sensitivities, electromechanical coupling coefficient, etc. The finite element method (FEM) is employed to investigate the device’s performance. Compared to conventional CMUTs, T-CMUTs reduce collapse voltage by 36.2%, with transmitting/receiving sensitivities and electromechanical coupling coefficient improved by 56.1%, 62.6%, and 76.0% under the same bias ratios; furthermore,...