数码产品
自愈
可穿戴技术
材料科学
可穿戴计算机
纳米技术
电子元件
物联网
计算机科学
组分(热力学)
柔性电子器件
有可能
可伸缩电子设备
嵌入式系统
电气工程
工程类
病理
替代医学
物理
热力学
医学
心理学
心理治疗师
作者
Donghee Son,Jiheong Kang,Orestis Vardoulis,Yeongin Kim,Naoji Matsuhisa,Jin Young Oh,John W. F. To,Jaewan Mun,Toru Katsumata,Yuxin Liu,Allister F. McGuire,Marta Krason,Francisco Molina‐Lopez,Jooyeun Ham,Ulrike Kraft,Yeongjun Lee,Youngjun Yun,Jeffrey B.‐H. Tok,Zhenan Bao
标识
DOI:10.1038/s41565-018-0244-6
摘要
Electronic skin devices capable of monitoring physiological signals and displaying feedback information through closed-loop communication between the user and electronics are being considered for next-generation wearables and the ‘Internet of Things’. Such devices need to be ultrathin to achieve seamless and conformal contact with the human body, to accommodate strains from repeated movement and to be comfortable to wear. Recently, self-healing chemistry has driven important advances in deformable and reconfigurable electronics, particularly with self-healable electrodes as the key enabler. Unlike polymer substrates with self-healable dynamic nature, the disrupted conducting network is unable to recover its stretchability after damage. Here, we report the observation of self-reconstruction of conducting nanostructures when in contact with a dynamically crosslinked polymer network. This, combined with the self-bonding property of self-healing polymer, allowed subsequent heterogeneous multi-component device integration of interconnects, sensors and light-emitting devices into a single multi-functional system. This first autonomous self-healable and stretchable multi-component electronic skin paves the way for future robust electronics. Self-reconstruction of conducting nanostructures assisted by a dynamically crosslinked polymer network enables the fabrication of autonomous self-healable and stretchable multi-component electronic skin.
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