Electrical Systems and Optics Research Division, University of Nottingham, Nottingham, UK.
IEEE Trans Ultrason Ferroelectr Freq Control. 2011 Feb;58(2):470-6. doi: 10.1109/TUFFC.2011.1824.
In this paper, we demonstrate an optically powered microelectromechanical system (MEMS) transducer. It was designed and fabricated using MEMS techniques, and can generate narrowband ultrasonic bulk waves from a broadband laser excitation pulse with high efficiency. The transducer is a two-mask-level MEMS device with a microdisk seated on a microstem. When a laser pulse is incident on the disk center, a resonant flapping motion of the disk is actuated because of the thermomechanical interaction between the absorbing and non-absorbing parts of the disk, coupling a narrowband longitudinal bulk wave propagating along the axis of the stem into the sample. Finite element (FE) methods were used to simulate the generated ultrasound; the results agree well with experimental measurements. Experiments with the fabricated transducers have shown that narrowband ultrasound with a high SNR/amplitude was generated successfully; compared with normal thermoelastic generation, ultrasound with at least 5 times higher amplitude can be achieved by an optimized MEMS transducer. The transducer is inexpensive, compact, and simple to use.
在本文中,我们展示了一种基于光供电的微机电系统(MEMS)换能器。它采用 MEMS 技术设计和制造,能够利用宽带激光激励脉冲高效地产生窄带体声波。该换能器是一种具有微盘和微柱的双掩模级 MEMS 器件。当激光脉冲入射到盘的中心时,由于盘的吸收和非吸收部分之间的热机械相互作用,盘会产生共振拍打运动,从而将沿柱轴传播的窄带体纵波耦合到样品中。有限元(FE)方法被用于模拟产生的超声波;结果与实验测量吻合良好。使用所制造的换能器进行的实验表明,成功地产生了具有高 SNR/幅度的窄带超声波;与常规热弹激发相比,通过优化的 MEMS 换能器可以实现至少 5 倍高幅度的超声波。该换能器成本低廉、结构紧凑且易于使用。