材料科学
可伸缩电子设备
数码产品
柔性电子器件
基质(水族馆)
电子系统
电子皮肤
可穿戴技术
模数
电子元件
纳米技术
复合材料
导电体
光电子学
软质材料
弹性模量
电子结构
电极
可穿戴计算机
灵活的显示器
软机器人
作者
Wenbo Zhao,Yifan Deng,Binlong Deng,Qinghe Cao,Yu Zhang,Fan Bu,Sufeng Zhou,Jipeng Chen,Mingzhu Zhu,Cao Guan
摘要
Stretchable multilayer electronic systems hold transformative potential for next-generation wearable electronics, soft robotics, and human-machine interfaces. However, the stretchability and stability are severely hindered by the interfacial mechanical and electrical mismatch of different components. Herein, by simultaneously combining modulus-engineered substrate with vertical soft interconnects, we report a multilayer electronic system design with both high stretchability and stability. The homologous soft-bridge and rigid-island design effectively reduces modulus mismatch and facilitates interfacial bonding, and the raw/hybrid liquid metal-based vertical interconnects efficiently alleviate Poisson effect thus ensuring stable mechanical and electrical connections. As a result, such engineered multilayer electronics demonstrate high stretchability (800% strain limit) and high stability (over 4000 cycles at 100% strain) that outperform the results from previously reported multilayered flexible electronic devices. A three-layer stretchable electronic system performs well as an electronic skin on a soft robot, and a wireless battery-integrated intelligent haptic system is also demonstrated.
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