Microsystems Division, Masdar Institute of Science and Technology, PO Box 54224, Abu Dhabi, United Arab Emirates.
Ultrasonics. 2013 Feb;53(2):328-34. doi: 10.1016/j.ultras.2012.06.015. Epub 2012 Jul 11.
The effect of plate electrode area on the deflection of a symmetric circular bimorph piezoelectric micromachined ultrasonic transducer (pMUT) with clamped and simply supported boundary conditions was studied for the first time. Distinct plate displacement shape functions were defined for the regions underneath and outside the active electrodes. The plate shape functions were solved analytically using classic plate theory in conjunction with the external boundary conditions and the internal ones between the two regions in order to calculate the exact plate displacement under both external voltage stimulus and acoustic pressure. The model was used to study the effect of the electrode area on the overall plate deflection per unit input voltage such that the electromechanical coupling is optimized. While the center plate deflection increased monotonically with the electrode area for a simply supported plate, it followed a parabolic shape for a clamped one with a maximum deflection when the electrode radius covered 60% of the total plate radius. The simply supported plate exhibited four times the plate deflection capability of its clamped counterpart, when both are operating at their optimal electrode size. Both an experimental clamped bimorph aluminum nitride (AlN) pMUT, recently reported in the literature, and Finite Element Modeling (FEM) were used to verify the developed model. The theoretical model predicted a static displacement per unit voltage of 10.9nm/V and a resonant frequency of 196.5kHz, which were in excellent agreement with the FEM results of 10.32nm/V and 198.5kHz, respectively. The modeling data matched well with the experimental measurements and the error ranged from 2.7-22% due to process variations across the wafer. As such, the developed model can be used to design more sensitive pMUTs or extract the flexural piezoelectric coefficient using piezoelectrically actuated circular plates.
首次研究了带有夹持和简支边界条件的对称圆形双压电晶片微机械超声换能器(pMUT)的板极面积对其偏转角的影响。为极板下和极板外区域定义了不同的板位移形状函数。使用经典板理论结合外部边界条件和两个区域之间的内部边界条件,对板形状函数进行了分析求解,以计算在外加电压激励和声波压力下的精确板位移。该模型用于研究电极面积对单位输入电压下总板挠度的影响,从而优化机电耦合。对于简支板,中心板挠度随电极面积单调增加,而对于夹持板,其挠度随电极半径覆盖总板半径的 60%呈抛物线形状。当两者都在最佳电极尺寸下工作时,简支板的板挠度能力是其夹持板的四倍。最近文献中报道的实验夹持双压电晶片氮化铝(AlN)pMUT 和有限元建模(FEM)都用于验证所开发的模型。理论模型预测的单位电压静态位移为 10.9nm/V,谐振频率为 196.5kHz,与 FEM 结果分别为 10.32nm/V 和 198.5kHz 非常吻合。建模数据与实验测量吻合较好,误差范围为 2.7-22%,这是由于晶圆上的工艺变化所致。因此,所开发的模型可用于设计更灵敏的 pMUT 或使用压电驱动的圆形板提取弯曲压电系数。