Topological supramolecular network enabled high-conductivity, stretchable organic bioelectronics
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, esp...
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Veröffentlicht in: | Science (American Association for the Advancement of Science) 2022-03, Vol.375 (6587), p.1411-1417 |
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Sprache: | eng |
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Zusammenfassung: | 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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ISSN: | 0036-8075 1095-9203 |
DOI: | 10.1126/science.abj7564 |