石墨烯
电子皮肤
材料科学
纳米技术
灵活性(工程)
光电子学
计算机科学
数学
统计
作者
Yancong Qiao,Yunfan Wang,He Tian,Mingrui Li,Jinming Jian,Yuhong Wei,Ye Tian,Dan-Yang Wang,Yu Pang,Xiangshun Geng,Xuefeng Wang,Yunfei Zhao,Huimin Wang,Ning-Qin Deng,Muqiang Jian,Yingying Zhang,Renrong Liang,Yi Yang,Tian‐Ling Ren
出处
期刊:ACS Nano
[American Chemical Society]
日期:2018-07-24
卷期号:12 (9): 8839-8846
被引量:294
标识
DOI:10.1021/acsnano.8b02162
摘要
Due to its excellent flexibility, graphene has an important application prospect in epidermal electronic sensors. However, there are drawbacks in current devices, such as sensitivity, range, lamination, and artistry. In this work, we have demonstrated a multilayer graphene epidermal electronic skin based on laser scribing graphene, whose patterns are programmable. A process has been developed to remove the unreduced graphene oxide. This method makes the epidermal electronic skin not only transferable to butterflies, human bodies, and any other objects inseparably and elegantly, merely with the assistance of water, but also have better sensitivity and stability. Therefore, pattern electronic skin could attach to every object like artwork. When packed in Ecoflex, electronic skin exhibits excellent performance, including ultrahigh sensitivity (gauge factor up to 673), large strain range (as high as 10%), and long-term stability. Therefore, many subtle physiological signals can be detected based on epidermal electronic skin with a single graphene line. Electronic skin with multiple graphene lines is employed to detect large-range human motion. To provide a deeper understanding of the resistance variation mechanism, a physical model is established to explain the relationship between the crack directions and electrical characteristics. These results show that graphene epidermal electronic skin has huge potential in health care and intelligent systems.
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