生物电子学
解耦(概率)
纳米技术
超分子化学
稳健性(进化)
材料科学
计算机科学
导电体
纳米尺度
拓扑(电路)
生物传感器
电气工程
化学
工程类
控制工程
基因
晶体结构
复合材料
生物化学
结晶学
作者
Yuanwen Jiang,Zhitao Zhang,Yixuan Wang,Deling Li,Charles‐Théophile Coen,Ernie Hwaun,Gan Chen,Hung‐Chin Wu,Donglai Zhong,Simiao Niu,Weichen Wang,Aref Saberi,Jian‐Cheng Lai,Yilei Wu,Yang Wang,Artem A. Trotsyuk,Kang Yong Loh,Chien‐Chung Shih,Wenhui Xu,Kui Liang
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2022-03-24
卷期号:375 (6587): 1411-1417
被引量:459
标识
DOI:10.1126/science.abj7564
摘要
Intrinsically stretchable bioelectronic devices based on soft and conducting organic materials have been regarded as the ideal interface for seamless and biocompatible integration with the human body. A remaining challenge is to combine high mechanical robustness with good electrical conduction, especially when patterned at small feature sizes. We develop a molecular engineering strategy based on a topological supramolecular network, which allows for the decoupling of competing effects from multiple molecular building blocks to meet complex requirements. We obtained simultaneously high conductivity and crack-onset strain in a physiological environment, with direct photopatternability down to the cellular scale. We further collected stable electromyography signals on soft and malleable octopus and performed localized neuromodulation down to single-nucleus precision for controlling organ-specific activities through the delicate brainstem.
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