Department of Electrical Engineering (ESAT-MNS), KU Leuven, 3000 Leuven, Belgium.
Leuven Institute for Micro- and Nanoscale Integration (LIMNI), KU Leuven, 3000 Leuven, Belgium.
Sensors (Basel). 2023 May 17;23(10):4826. doi: 10.3390/s23104826.
This paper presents a fully addressable 8 × 8 two-dimensional (2D) rigid piezoelectric micromachined ultrasonic transducer (PMUT) array. The PMUTs were fabricated on a standard silicon wafer, resulting in a low-cost solution for ultrasound imaging. A polyimide layer is used as the passive layer in the PMUT membranes on top of the active piezoelectric layer. The PMUT membranes are realized by backside deep reactive ion etching (DRIE) with an oxide etch stop. The polyimide passive layer enables high resonance frequencies that can be easily tuned by controlling the thickness of the polyimide. The fabricated PMUT with 6 µm polyimide thickness showed a 3.2 MHz in-air frequency with a 3 nm/V sensitivity. The PMUT has shown an effective coupling coefficient of 14% as calculated from the impedance analysis. An approximately 1% interelement crosstalk between the PMUT elements in one array is observed, which is at least a five-fold reduction compared to the state of the art. A pressure response of 40 Pa/V at 5 mm was measured underwater using a hydrophone while exciting a single PMUT element. A single-pulse response captured using the hydrophone suggested a 70% -6 dB fractional bandwidth for the 1.7 MHz center frequency. The demonstrated results have the potential to enable imaging and sensing applications in shallow-depth regions, subject to some optimization.
本文提出了一种全寻址的 8×8 二维(2D)刚性压电微机械超声换能器(PMUT)阵列。PMUT 是在标准硅片上制造的,为超声成像提供了一种低成本的解决方案。聚酰亚胺层用作顶部有源压电层上 PMUT 膜的无源层。PMUT 膜通过背面深反应离子刻蚀(DRIE)和氧化物刻蚀停止来实现。聚酰亚胺无源层可实现较高的共振频率,通过控制聚酰亚胺的厚度可轻松进行调谐。具有 6 µm 聚酰亚胺厚度的制造 PMUT 在空气中的频率为 3.2 MHz,灵敏度为 3nm/V。根据阻抗分析计算,PMUT 的有效耦合系数为 14%。在一个阵列中,PMUT 元件之间的大约 1%的元件间串扰被观察到,与现有技术相比至少减少了五倍。在水下使用水听器测量时,单个 PMUT 元件激励时的压力响应为 5mm 处 40 Pa/V。使用水听器捕获的单个脉冲响应表明,对于 1.7MHz 的中心频率,-6dB 分数带宽为 70%。在进行一些优化的情况下,所展示的结果有可能实现浅层区域的成像和传感应用。