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用于柔性和可拉伸传感器的表面皱纹

Surface Wrinkling for Flexible and Stretchable Sensors.

作者信息

Lee Giwon, Zarei Mohammad, Wei Qingshan, Zhu Yong, Lee Seung Goo

机构信息

Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC, 27695, USA.

Department of Mechanical and Aerospace Engineering, North Carolina State University, Raleigh, NC, 27695, USA.

出版信息

Small. 2022 Oct;18(42):e2203491. doi: 10.1002/smll.202203491. Epub 2022 Sep 1.

Abstract

Recent advances in nanolithography, miniaturization, and material science, along with developments in wearable electronics, are pushing the frontiers of sensor technology into the large-scale fabrication of highly sensitive, flexible, stretchable, and multimodal detection systems. Various strategies, including surface engineering, have been developed to control the electrical and mechanical characteristics of sensors. In particular, surface wrinkling provides an effective alternative for improving both the sensing performance and mechanical deformability of flexible and stretchable sensors by releasing interfacial stress, preventing electrical failure, and enlarging surface areas. In this study, recent developments in the fabrication strategies of wrinkling structures for sensor applications are discussed. The fundamental mechanics, geometry control strategies, and various fabricating methods for wrinkling patterns are summarized. Furthermore, the current state of wrinkling approaches and their impacts on the development of various types of sensors, including strain, pressure, temperature, chemical, photodetectors, and multimodal sensors, are reviewed. Finally, existing wrinkling approaches, designs, and sensing strategies are extrapolated into future applications.

摘要

纳米光刻、小型化和材料科学的最新进展,以及可穿戴电子设备的发展,正将传感器技术的前沿推向大规模制造高灵敏度、柔性、可拉伸和多模态检测系统。包括表面工程在内的各种策略已被开发出来,以控制传感器的电学和力学特性。特别是,表面起皱通过释放界面应力、防止电气故障和扩大表面积,为提高柔性和可拉伸传感器的传感性能和机械变形能力提供了一种有效的替代方法。在本研究中,讨论了用于传感器应用的起皱结构制造策略的最新进展。总结了起皱图案的基本力学、几何控制策略和各种制造方法。此外,还综述了起皱方法的现状及其对包括应变、压力、温度、化学、光电探测器和多模态传感器在内的各类传感器发展的影响。最后,将现有的起皱方法、设计和传感策略推广到未来的应用中。

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