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具有不同微观结构的柔性和可拉伸电容传感器。

Flexible and Stretchable Capacitive Sensors with Different Microstructures.

机构信息

State Key Laboratory of Power System, Department of Electrical Engineering, Tsinghua University, Beijing, 100084, China.

State Key Laboratory of Information Photonics and Optical Communications, School of Science, Beijing University of Posts and Telecommunications, Beijing, 100876, China.

出版信息

Adv Mater. 2021 Aug;33(34):e2008267. doi: 10.1002/adma.202008267. Epub 2021 Jul 8.

Abstract

Recently, sensors that can imitate human skin have received extensive attention. Capacitive sensors have a simple structure, low loss, no temperature drift, and other excellent properties, and can be applied in the fields of robotics, human-machine interactions, medical care, and health monitoring. Polymer matrices are commonly employed in flexible capacitive sensors because of their high flexibility. However, their volume is almost unchanged when pressure is applied, and they are inherently viscoelastic. These shortcomings severely lead to high hysteresis and limit the improvement in sensitivity. Therefore, considerable efforts have been applied to improve the sensing performance by designing different microstructures of materials. Herein, two types of sensors based on the applied forces are discussed, including pressure sensors and strain sensors. Currently, five types of microstructures are commonly used in pressure sensors, while four are used in strain sensors. The advantages, disadvantages, and practical values of the different structures are systematically elaborated. Finally, future perspectives of microstructures for capacitive sensors are discussed, with the aim of providing a guide for designing advanced flexible and stretchable capacitive sensors via ingenious human-made microstructures.

摘要

近年来,能够模拟人体皮肤的传感器受到了广泛关注。电容式传感器具有结构简单、损耗低、无温度漂移等优异性能,可应用于机器人、人机交互、医疗保健和健康监测等领域。聚合物基体由于其高柔韧性而常用于柔性电容传感器中。然而,当施加压力时,其体积几乎不变,并且具有固有粘弹性。这些缺点严重导致滞后高,并限制了灵敏度的提高。因此,通过设计不同的材料微观结构,人们已经做出了相当大的努力来提高传感性能。本文讨论了基于作用力的两种传感器,包括压力传感器和应变传感器。目前,压力传感器中常用的微结构有五种,而应变传感器中常用的有四种。系统阐述了不同结构的优缺点和实际价值。最后,讨论了电容传感器微结构的未来发展前景,旨在通过巧妙的人为微结构为设计先进的柔性和可拉伸电容传感器提供指导。

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