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A numerical study of the electromechanical response of liquid metal embedded elastomers

机译:液态金属包埋弹性体的机电响应的数值研究

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摘要

Liquid metal embedded elastomers (LMEE) are soft, stretchable materials that become conductive upon application of a compressive force. The conductance stems from the compression-induced percolation of the liquid metal inclusions. Interestingly, a recent work showed that once the elastomer becomes conductive, its resistance is independent of stretch. This work aims to understand these phenomena. We start by simulating the response of an elastomer composite with two soft inclusions subjected to a compressive force. It is shown that the presence of the inclusions can give rise to a tensile stress in the elastomer, leading to rupture and percolation. Next, we study the dependence of the resistance and the conductivity on an applied uniaxial stretch in LMEEs with several microstructures. The simulations are in good qualitative agreement with experimental findings. It is also demonstrated that the electromechanical properties highly depend on the microstructural arrangement of the inclusions and can therefore be tuned by microstructural design.
机译:液态金属嵌入的弹性体(LMEE)是柔软的可拉伸材料,在施加压力时会导电。电导源自液态金属夹杂物的压缩诱导的渗滤。有趣的是,最近的一项工作表明,弹性体一旦导电,其电阻就不受拉伸的影响。这项工作旨在了解这些现象。我们首先通过模拟弹性体复合材料在压缩力作用下的两个软夹杂物的响应。结果表明,夹杂物的存在会在弹性体中引起拉伸应力,从而导致破裂和渗滤。接下来,我们研究具有若干微结构的LMEE中电阻和电导率对所施加单轴拉伸的依赖性。模拟与实验结果在质量上吻合良好。还证明了机电性能高度依赖于夹杂物的微观结构排列,因此可以通过微观结构设计对其进行调整。

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    Division of Engineering and Applied Science, California Institute of Technology, Pasadena;

    Department of Materials and Mechanical Engineering, University of California, Santa Barbara;

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