Cheng Chunlong, Lu Zihan, Yang Jingwen, Gong Xiaoyue, Ke Qingqing
School of Microelectronics Science and Technology, Sun Yat-sen University, Zhuhai 519082, China.
Guangdong Provincial Key Laboratory of Optoelectronic Information Processing Chips and Systems, Sun Yat-sen University, Zhuhai 519082, China.
Materials (Basel). 2023 Apr 21;16(8):3269. doi: 10.3390/ma16083269.
Surface acoustic wave (SAW) strain sensors fabricated on piezoelectric substrates have attracted considerable attention due to their attractive features such as passive wireless sensing ability, simple signal processing, high sensitivity, compact size and robustness. To meet the needs of various functioning situations, it is desirable to identify the factors that affect the performance of the SAW devices. In this work, we perform a simulation study on Rayleigh surface acoustic wave (RSAW) based on a stacked Al/LiNbO system. A SAW strain sensor with a dual-port resonator was modeled using multiphysics finite element model (FEM) method. While FEM has been widely used for numerical calculations of SAW devices, most of the simulation works mainly focus on SAW modes, SAW propagation characteristics and electromechanical coupling coefficients. Herein, we propose a systematic scheme via analyzing the structural parameters of SAW resonators. Evolution of RSAW eigenfrequency, insertion loss (), quality factor () and strain transfer rate with different structural parameters are elaborated by FEM simulations. Compared with the reported experimental results, the relative errors of RSAW eigenfrequency and are about 3% and 16.3%, respectively, and the absolute errors are 5.8 MHz and 1.63 dB (the corresponding / is only 6.6%). After structural optimization, the obtained resonator increases by 15%, decreases by 34.6% and the strain transfer rate increases by 2.4%. This work provides a systematic and reliable solution for the structural optimization of dual-port SAW resonators.
基于压电基片制造的表面声波(SAW)应变传感器因其具有无源无线传感能力、信号处理简单、灵敏度高、尺寸紧凑和坚固耐用等吸引人的特性而备受关注。为满足各种功能情况的需求,确定影响SAW器件性能的因素是很有必要的。在这项工作中,我们基于堆叠的Al/LiNbO系统对瑞利表面声波(RSAW)进行了模拟研究。使用多物理场有限元模型(FEM)方法对具有双端口谐振器的SAW应变传感器进行了建模。虽然FEM已广泛用于SAW器件的数值计算,但大多数模拟工作主要集中在SAW模式、SAW传播特性和机电耦合系数上。在此,我们通过分析SAW谐振器的结构参数提出了一种系统方案。通过FEM模拟阐述了不同结构参数下RSAW本征频率、插入损耗()、品质因数()和应变传递率的变化。与报道的实验结果相比,RSAW本征频率和的相对误差分别约为3%和16.3%,绝对误差分别为5.8 MHz和1.63 dB(相应的/仅为6.6%)。经过结构优化后,得到的谐振器增加了15%,降低了34.6%,应变传递率提高了2.4%。这项工作为双端口SAW谐振器的结构优化提供了一种系统且可靠的解决方案。