材料科学
电极
共晶体系
流体学
弹性体
变形(气象学)
涂层
电容感应
复合材料
软机器人
电阻和电导
液态金属
合金
生物医学工程
纳米技术
计算机科学
电气工程
物理化学
工程类
人工智能
执行机构
化学
操作系统
医学
作者
Hyesu Choi,Yichi Luo,Gina Olson,Phillip Won,Joo Hwan Shin,Jehyung Ok,Ye Ji Yang,Tae‐il Kim,Carmel Majidi
标识
DOI:10.1002/adfm.202301388
摘要
Abstract Kirigami, a traditional paper‐cutting art, is a promising method for creating mechanically robust circuitry for unconventional devices capable of extreme stretchability through structural deformation. In this study, this design approach is expanded upon by introducing Liquid Metal based Elastic Kirigami Electrodes (LM‐eKE) in which kirigami‐patterned soft elastomers are coated with eutectic gallium‐indium (EGaIn) alloy. Overcoming the mechanical and electrical limitations of previous efforts with paper‐like kirigami, the all soft LM‐eKE can be stretched to 820% strain while the electrical resistance only increases by 33%. This is enabled by the fluidic properties of the EGaIn coating, which maintains high electrical conductivity even as the elastic substrate undergoes extreme deformation. Applying the LM‐eKE to human knee joints and fingers, the resistance change during physical activities is under 1.7%, thereby allowing for stable electrical operation of wearable health monitoring devices for tracking electroencephalogram (EEG) signals and other physiological activity.
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