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Stretchable nanocomposite electrodes with tunable mechanical properties by supersonic cluster beam implantation in elastomers

机译:超声簇束注入弹性体中可调节机械性能的可拉伸纳米复合电极

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摘要

We demonstrate the fabrication of gold-polydimethylsiloxane nanocomposite electrodes, by supersonic cluster beam implantation, with tunable Young's modulus depending solely on the amount of metal clusters implanted in the elastomeric matrix. We show both experimentally and by atomistic simulations that the mechanical properties of the nanocomposite can be maintained close to that of the bare elastomer for significant metal volume concentrations. Moreover, the elastic properties of the nanocomposite, as experimentally characterized by nanoindentation and modeled with molecular dynamics simulations, are also well described by the Guth-Gold classical model for nanoparticle-filled rubbers, which depends on the presence, concentration, and aspect ratio of metal nanoparticles, and not on the physical and chemical modification of the polymeric matrix due to the embedding process. The elastic properties of the nanocomposite can therefore be determined and engineered a priori, by controlling only the nanoparticle concentration
机译:我们演示了超声簇束注入金-聚二甲基硅氧烷纳米复合电极的制造,其可调节的杨氏模量仅取决于植入弹性体基质中的金属簇的数量。我们通过实验和原子模拟表明,对于显着的金属体积浓度,纳米复合材料的机械性能可以保持接近裸弹性体的机械性能。此外,Guth-Gold经典模型对纳米粒子填充的橡胶也进行了很好的描述,该纳米复合材料的弹性性能(通过纳米压痕实验表征并通过分子动力学模拟进行了建模)取决于橡胶的存在,浓度和长宽比。金属纳米颗粒,而不是由于嵌入过程而对聚合物基体进行物理和化学改性。因此,可以通过仅控制纳米颗粒的浓度来确定和设计纳米复合材料的弹性特性

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