纳米纤维
纤维素
胶粘剂
自粘
自愈水凝胶
细菌纤维素
自愈
材料科学
歧管(流体力学)
计算机科学
纳米技术
化学工程
化学
高分子化学
图层(电子)
生物化学
医学
机械工程
替代医学
病理
工程类
作者
Lei Zhang,Lü Chen,Siheng Wang,Shanshan Wang,Dan Wang,Le Yu,Xu Xu,He Liu,Chaoji Chen
标识
DOI:10.1038/s41467-024-47986-y
摘要
Abstract Self-powered skin attachable and detachable electronics are under intense development to enable the internet of everything and everyone in new and useful ways. Existing on-demand separation strategies rely on complicated pretreatments and physical properties of the adherends, achieving detachable-on-demand in a facile, rapid, and universal way remains challenging. To overcome this challenge, an ingenious cellulose nanofiber-mediated manifold dynamic synergy strategy is developed to construct a supramolecular hydrogel with both reversible tough adhesion and easy photodetachment. The cellulose nanofiber-reinforced network and the coordination between Fe ions and polymer chains endow the dynamic reconfiguration of supramolecular networks and the adhesion behavior of the hydrogel. This strategy enables the simple and rapid fabrication of strong yet reversible hydrogels with tunable toughness ((Value max -Value min )/Value max of up to 86%), on-demand adhesion energy ((Value max -Value min )/Value max of up to 93%), and stable conductivity up to 12 mS cm −1 . We further extend this strategy to fabricate different cellulose nanofiber/Fe 3+ -based hydrogels from various biomacromolecules and petroleum polymers, and shed light on exploration of fundamental dynamic supramolecular network reconfiguration. Simultaneously, we prepare an adhesive-detachable triboelectric nanogenerator as a human-machine interface for a self-powered wireless monitoring system based on this strategy, which can acquire the real-time, self-powered monitoring, and wireless whole-body movement signal, opening up possibilities for diversifying potential applications in electronic skins and intelligent devices.
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