Baglioni Gabriele, Pezone Roberto, Vollebregt Sten, Cvetanović Zobenica Katarina, Spasenović Marko, Todorović Dejan, Liu Hanqing, Verbiest Gerard J, van der Zant Herre S J, Steeneken Peter G
Kavli Institute of Nanoscience, Delft University of Technology, The Netherlands.
Laboratory of Electronic Components, Technology and Materials, Delft University of Technology, The Netherlands.
Nanoscale. 2023 Mar 30;15(13):6343-6352. doi: 10.1039/d2nr05147h.
Microphones exploit the motion of suspended membranes to detect sound waves. Since the microphone performance can be improved by reducing the thickness and mass of its sensing membrane, graphene-based microphones are expected to outperform state-of-the-art microelectromechanical (MEMS) microphones and allow further miniaturization of the device. Here, we present a laser vibrometry study of the acoustic response of suspended multilayer graphene membranes for microphone applications. We address performance parameters relevant for acoustic sensing, including mechanical sensitivity, limit of detection and nonlinear distortion, and discuss the trade-offs and limitations in the design of graphene microphones. We demonstrate superior mechanical sensitivities of the graphene membranes, reaching more than 2 orders of magnitude higher compliances than commercial MEMS devices, and report a limit of detection as low as 15 dB, which is 10-15 dB lower than that featured by current MEMS microphones.
麦克风利用悬浮膜的运动来检测声波。由于通过减小传感膜的厚度和质量可以提高麦克风的性能,因此基于石墨烯的麦克风有望超越现有的微机电系统(MEMS)麦克风,并实现设备的进一步小型化。在此,我们展示了一项针对用于麦克风应用的悬浮多层石墨烯膜声学响应的激光振动测量研究。我们探讨了与声学传感相关的性能参数,包括机械灵敏度、检测限和非线性失真,并讨论了石墨烯麦克风设计中的权衡和局限性。我们证明了石墨烯膜具有卓越的机械灵敏度,其柔顺性比商用MEMS器件高出两个数量级以上,并报告了低至15 dB的检测限,这比当前MEMS麦克风的检测限低10 - 15 dB。