Kinetically controlled metal-elastomer nanophases for environmentally resilient stretchable electronics

Author:

Chae Soosang,Choi Won JinORCID,Nebel Lisa JuliaORCID,Cho Chang Hee,Besford Quinn A.,Knapp André,Makushko Pavlo,Zabila Yevhen,Pylypovskyi OleksandrORCID,Jeong Min Woo,Avdoshenko Stanislav,Sander OliverORCID,Makarov DenysORCID,Chung Yoon Jang,Fery AndreasORCID,Oh Jin YoungORCID,Lee Tae Il

Abstract

AbstractNanophase mixtures, leveraging the complementary strengths of each component, are vital for composites to overcome limitations posed by single elemental materials. Among these, metal-elastomer nanophases are particularly important, holding various practical applications for stretchable electronics. However, the methodology and understanding of nanophase mixing metals and elastomers are limited due to difficulties in blending caused by thermodynamic incompatibility. Here, we present a controlled method using kinetics to mix metal atoms with elastomeric chains on the nanoscale. We find that the chain migration flux and metal deposition rate are key factors, allowing the formation of reticular nanophases when kinetically in-phase. Moreover, we observe spontaneous structural evolution, resulting in gyrified structures akin to the human brain. The hybridized gyrified reticular nanophases exhibit strain-invariant metallic electrical conductivity up to 156% areal strain, unparalleled durability in organic solvents and aqueous environments with pH 2–13, and high mechanical robustness, a prerequisite for environmentally resilient devices.

Publisher

Springer Science and Business Media LLC

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