材料科学
共晶体系
液态金属
纳米技术
惰性
数码产品
色散(光学)
电导率
纳米尺度
化学工程
双金属片
表面张力
超声
纳米颗粒
电阻率和电导率
金属
导电体
纳米孔
电极
乳状液
柔性电子器件
复合材料
电化学
可穿戴技术
电子皮肤
机械化学
金属氢氧化物
作者
Osman Gul,Junseong Ahn,Hye Jin Kim,Xinge Yu,Inkyu Park
标识
DOI:10.1002/adfm.202527396
摘要
Abstract While liquid metals possess exceptional electrical conductivity, their integration into stretchable and recyclable electronics remains constrained. High surface tension causes poor adhesion and uncontrolled spreading, and current processing methods often lack scalability or recyclability, limiting broader adoption in soft robotics, wearable healthcare, and sustainable systems. Here, a class of mechanochemically activatable liquid metal powders (MALMPs) is introduced that decouple conductivity from fluidity, enabling ambient stable, recyclable, and user‐defined soft circuits. Sonication dispersion of eutectic gallium–indium in carbonyl‐rich solvents yields core–shell particles with oxide‐stabilized surfaces. These powders remain electrically inert under ambient conditions but can be locally activated by mechanical pressure, which ruptures the shell to restore conductivity. This mechanism allows dry‐state patterning on a wide range of substrates, including flexible, stretchable, and biological surfaces, followed by localized fluidization upon mechanical activation to induce conductivity. MALMPs maintain stable conductivity under >10 000 stretching cycles and 700% strain and can be fully recycled via mild sodium hydroxide (NaOH) treatment. Demonstrations across transient and reconfigurable circuits, human–machine interfaces, and skin‐conformal systems highlight the versatility and scalability of the platform for next‐generation electronics.
科研通智能强力驱动
Strongly Powered by AbleSci AI