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Laser-Processed Nature-Inspired Deformable Structures for Breathable and Reusable Electrophysiological Sensors toward Controllable Home Electronic Appliances and Psychophysiological Stress Monitoring

材料科学 微加工 可穿戴计算机 柔性电子器件 可伸缩电子设备 可重用性 数码产品 可穿戴技术 纳米技术 印刷电路板 计算机科学 计算机硬件 嵌入式系统 电气工程 制作 操作系统 工程类 医学 病理 程序设计语言 替代医学 软件
作者
Hyeokju Chae,Hyuk‐Jun Kwon,Yu-Kang Kim,Yoochan Won,Donghan Kim,Hi‐Joon Park,Sunkook Kim,Srinivas Gandla
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:11 (31): 28387-28396 被引量:52
标识
DOI:10.1021/acsami.9b06363
摘要

Physiological monitoring through skin patch stretchable devices has received extensive attention because of their significant findings in many human-machine interaction applications. In this paper, we present novel nature-inspired, kiri-spider, serpentine structural designs to sustain mechanical deformations under complex stress environments. Strain-free mechanical structures involving stable high areal coverage (spiderweb), three-dimensional out-of-plane deformations (kirigami), and two-dimensional (2D) stretchable (2D spring) electrodes demonstrated high levels of mechanical loading under various strains, which were verified through theoretical and experimental studies. Alternative to conventional microfabrication procedures, sensors fabricated by a facile and rapid benchtop programmable laser machine enabled the realization of low-cost, high-throughput manufacture, followed by transferring procedures with a nearly 100% yield. For the first time, we demonstrated laser-processed thin (∼10 μm) flexible filamentary patterns embedded within the solution-processed polyimide to make it compatible with current flexible printed circuit board electronics. A patch-based sensor with thin, breathable, and sticky nature exhibited remarkable water permeability >20 g h-1 m-2 at a thickness of 250 μm. Moreover, the reusability of the sensor patch demonstrated the significance of our patch-based electrophysiological sensor. Furthermore, this wearable sensor was successfully implemented to control human-machine interfaces to operate home electronic appliances and monitor mental stress in a pilot study. These advances in novel mechanical architectures with good sensing performances provide new opportunities in wearable smart sensors.
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