ArticleAdvanced science (Weinheim, Baden-Wurttemberg, Germany)2026
A Superstrong and Ultratough Stretchable Electronic Conductor With Ultradurable Strain-Insensitive Electromechanical Performance.
Article in Advanced science (Weinheim, Baden-Wurttemberg, Germany), 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Developing high-performance stretchable electronic conductors (SECs) is vital for advancing soft electronics and robotics. However, existing SECs still suffer from limited mechanical robustness and vulnerable conductive pathways, undermining their electromechanical stability and durability in stretchable electronic applications. Here, we report a superstrong and ultratough SEC that exhibits ultradurable strain-insensitive electromechanical performance, deliberately engineered by dispersing a viscoplastic quasi-solid conductive filler into a superstrong, ultratough supramolecular elastomer. Instead of utilizing liquid metal (LM) as the conductive filler, we developed an LM-Ag alloy that becomes a viscoplastic quasi-solid conductor yet exhibits thixotropic flow, while also demonstrating lowered surface tension and enhanced interfacial interaction with the supramolecular elastomer. Our design effectively prevents LM leakage, addressing the formidable challenge encountered in conventional LM-based SECs. Importantly, the LM-Ag alloy enables thixotropic flow to establish additional conductive pathways upon stretching, endowing the SEC with strain-insensitive conductance. The SEC displays superhigh strength (∼20.0 MPa) and ultrahigh toughness (∼66 MJ m
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