Ji Zhangbin, Zhou Jian, Lin Huamao, Wu Jianhui, Zhang Dinghong, Garner Sean, Gu Alex, Dong Shurong, Fu YongQing, Duan Huigao
College of Mechanical and Vehicle Engineering, Hunan University, 410082 Changsha, China.
Shanghai Industrial μTechnology Research Institute (SITRI), 235 Chengbei Rd, 201800 Shanghai, China.
Microsyst Nanoeng. 2021 Nov 26;7:97. doi: 10.1038/s41378-021-00325-3. eCollection 2021.
Flexible surface acoustic wave (SAW) devices have recently attracted tremendous attention for their widespread application in sensing and microfluidics. However, for these applications, SAW devices often need to be bent into off-axis deformations between the acoustic wave propagation direction and bending direction. Currently, there are few studies on this topic, and the bending mechanisms during off-axis bending deformations have remained unexplored for multisensing applications. Herein, we fabricated aluminum nitride (AlN) flexible SAW devices by using high-quality AlN films deposited on flexible glass substrates and systematically investigated their complex deformation behaviors. A theoretical model was first developed using coupling wave equations and the boundary condition method to analyze the characteristics of the device with bending and off-axis deformation under elastic strains. The relationships between the frequency shifts of the SAW device and the bending strain and off-axis angle were obtained, and the results were identical to those from the theoretical calculations. Finally, we performed proof-of-concept demonstrations of its multisensing potential by monitoring human wrist movements at various off-axis angles and detecting UV light intensities on a curved surface, thus paving the way for the application of versatile flexible electronics.
柔性表面声波(SAW)器件因其在传感和微流体领域的广泛应用,近年来受到了极大关注。然而,对于这些应用,SAW器件通常需要弯曲成声波传播方向与弯曲方向之间的离轴变形。目前,关于这一主题的研究很少,并且在多传感应用中,离轴弯曲变形过程中的弯曲机制仍未得到探索。在此,我们通过使用沉积在柔性玻璃基板上的高质量氮化铝(AlN)薄膜制造了柔性AlN SAW器件,并系统地研究了它们复杂的变形行为。首先利用耦合波动方程和边界条件法建立了理论模型,以分析器件在弹性应变下弯曲和离轴变形时的特性。得到了SAW器件频率偏移与弯曲应变和离轴角度之间的关系,结果与理论计算结果一致。最后,我们通过监测不同离轴角度下的人体手腕运动以及检测曲面上的紫外光强度,对其多传感潜力进行了概念验证演示,从而为多功能柔性电子器件的应用铺平了道路。