A Solid-Liquid Bicontinuous Fiber with Strain-Insensitive Ionic Conduction

ADVANCED MATERIALS(2024)

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摘要
Stretchable ionic conductors are crucial for enabling advanced iontronic devices to operate under diverse deformation conditions. However, when employed as interconnects, existing ionic conductors struggle to maintain stable ionic conduction under strain, hindering high-fidelity signal transmission. Here, it is shown that strain-insensitive ionic conduction can be achieved by creating a solid-liquid bicontinuous microstructure. A bicontinuous fiber from polymerization-induced phase separation, which contains a solid elastomer phase interpenetrated by a liquid ion-conducting phase, is fabricated. The spontaneous partitioning of dissolved salts leads to the formation of a robust self-wrinkled interface, fostering the development of highly tortuous ionic channels. Upon stretch, these meandering ionic channels are straightened, effectively enhancing ionic conductivity to counteract the strain effect. Remarkably, the fiber retains highly stable ionic conduction till fracture, with only 7% resistance increase at 200% strain. This approach presents a promising avenue for designing durable ionic cables capable of signal transmission with minimal strain-induced distortion. To realize strain-insensitive ionic conduction for high-fidelity signal transmission, a solid-liquid bicontinuous fiber via polymerization-induced phase separation is designed. The fiber features a solid elastomer phase interpenetrated by a liquid ion-conducting phase, forming highly tortuous ionic channels. Remarkably, stretch mainly straightens these channels, leading to a minimal resistance increase with strain, outperforming the vast majority of existing ionic conductors. image
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关键词
anti-fatigue,ionic conductors,phase separation,strain-insensitive,stretchable fibers
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