I3N-Aveiro, Department of Physics, University of Aveiro, Aveiro, 3810-193, Portugal.
I3N/CENIMAT, Materials Science Department, Faculty of Sciences and Technology, Universidade NOVA de Lisboa and CEMOP/UNINOVA, Caparica, 2829-516, Portugal.
Adv Mater. 2022 Feb;34(8):e2101326. doi: 10.1002/adma.202101326. Epub 2021 Jul 20.
A pressing need to develop low-cost, environmentally friendly, and sensitive sensors has arisen with the advent of the always-connected paradigm of the internet-of-things (IoT). In particular, mechanical sensors have been widely studied in recent years for applications ranging from health monitoring, through mechanical biosignals, to structure integrity analysis. On the other hand, innovative ways to implement mechanical actuation have also been the focus of intense research in an attempt to close the circle of human-machine interaction, and move toward applications in flexible electronics. Due to its potential scalability, disposability, and outstanding properties, graphene has been thoroughly studied in the field of mechanical transduction. The applications of graphene in mechanical transduction are reviewed here. An overview of sensor and actuator applications is provided, covering different transduction mechanisms such as piezoresistivity, capacitive sensing, optically interrogated displacement, piezoelectricity, triboelectricity, electrostatic actuation, chemomechanical and thermomechanical actuation, as well as thermoacoustic emission. A critical review of the main approaches is presented within the scope of a wider discussion on the future of this so-called wonder material in the field of mechanical transduction.
随着物联网(IoT)的普及,人们迫切需要开发低成本、环保且灵敏的传感器。特别是,近年来,机械传感器已经在从健康监测、机械生物信号到结构完整性分析等各种应用中得到了广泛研究。另一方面,为了实现人机交互的闭环并推动柔性电子应用,人们也在积极研究创新的机械致动方法。由于其潜在的可扩展性、可弃置性和卓越性能,石墨烯在机械转换领域得到了深入研究。本文回顾了石墨烯在机械转换中的应用。提供了传感器和执行器应用的概述,涵盖了不同的转换机制,如压阻、电容感应、光学位移检测、压电、摩擦电、静电致动、化学机械和热机械致动以及热声发射。在更广泛地讨论这种所谓的神奇材料在机械转换领域的未来的范围内,对主要方法进行了批判性回顾。