Department of Chemical Engineering, Stanford University, Stanford, CA 94305, USA.
Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Department of Chemistry, School of Science, Tianjin University, Tianjin 300072, China.
Science. 2022 Mar 25;375(6587):1411-1417. doi: 10.1126/science.abj7564. Epub 2022 Mar 24.
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.
基于柔软和导电有机材料的本征可拉伸生物电子设备被认为是与人体无缝和生物相容集成的理想界面。仍然存在的挑战是将高机械鲁棒性与良好的导电性结合起来,尤其是在小特征尺寸下进行图案化时。我们开发了一种基于拓扑超分子网络的分子工程策略,该策略允许从多个分子构建块中解耦竞争效应,以满足复杂的要求。我们在生理环境中同时获得了高导电性和裂纹起始应变,并且具有直接的光图案化能力,可达到细胞尺度。我们进一步在柔软和可延展的章鱼上收集稳定的肌电图信号,并进行局部神经调节,达到单细胞精度,通过精细的脑干控制特定器官的活动。