弹性体
材料科学
可伸缩电子设备
数码产品
柔性电子器件
纳米技术
流体学
软机器人
泄漏(经济)
微流控
可穿戴技术
生物电子学
可穿戴计算机
光电子学
复合材料
电气工程
计算机科学
执行机构
生物传感器
工程类
宏观经济学
嵌入式系统
经济
作者
Yinji Ma,Matt Pharr,Liang Wang,Jeonghyun Kim,Kun Wang,Yeguang Xue,Ning Rui,Xiufeng Wang,Ha Uk Chung,Xue Feng,John A. Rogers,Yonggang Huang
出处
期刊:Small
[Wiley]
日期:2016-12-27
卷期号:13 (9)
被引量:80
标识
DOI:10.1002/smll.201602954
摘要
Managing the mechanical mismatch between hard semiconductor components and soft biological tissues represents a key challenge in the development of advanced forms of wearable electronic devices. An ultralow modulus material or a liquid that surrounds the electronics and resides in a thin elastomeric shell provides a strain‐isolation effect that enhances not only the wearability but also the range of stretchability in suitably designed devices. The results presented here build on these concepts by (1) replacing traditional liquids explored in the past, which have some nonnegligible vapor pressure and finite permeability through the encapsulating elastomers, with ionic liquids to eliminate any possibility for leakage or evaporation, and (2) positioning the liquid between the electronics and the skin, within an enclosed, elastomeric microfluidic space, but not in direct contact with the active elements of the system, to avoid any negative consequences on electronic performance. Combined experimental and theoretical results establish the strain‐isolating effects of this system, and the considerations that dictate mechanical collapse of the fluid‐filled cavity. Examples in skin‐mounted wearable include wireless sensors for measuring temperature and wired systems for recording mechano‐acoustic responses.
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