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Ultrasensitive Strain Gauges Enabled by Graphene- Stabilized Silicone Emulsions

机译:通过石墨烯 - 稳定的硅氧烷乳液使能过敏应变仪

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Here, an approach is presented to incorporate graphene nanosheets into a silicone rubber matrix via solid stabilization of oil-in-water emulsions. These emulsions can be cured into discrete, graphene-coated silicone balls or continuous, elastomeric films by controlling the degree of coalescence. The electromechanical properties of the resulting composites as a function of interdiffusion time and graphene loading level are characterized. With conductivities approaching 1 S m(-1), elongation to break up to 160%, and a gauge factor of approximate to 20 in the low-strain linear regime, small strains such as pulse can be accurately measured. At higher strains, the electromechanical response exhibits a robust exponential dependence, allowing accurate readout for higher strain movements such as chest motion and joint bending. The exponential gauge factor is found to be approximate to 20, independent of loading level and valid up to 80% strain; this consistent performance is due to the emulsion-templated microstructure of the composites. The robust behavior may facilitate high-strain sensing in the nonlinear regime using nanocomposites, where relative resistance change values in excess of 10(7) enable highly accurate bodily motion monitoring.
机译:这里,提出一种方法将石墨烯纳米片掺入硅橡胶基质中,通过固体稳定性的油包油乳液。这些乳液可以通过控制聚结程度来固化成离散的,石墨烯涂覆的硅树脂或连续的弹性体膜。作为间隔时间和石墨烯负载水平的函数的所得复合材料的机电性能。对于接近1 S M(-1)的电导率,伸长率为160%,并且在低应变线性状态下近似为20的规格因子,可以精确地测量诸如脉冲的小菌株。在较高的菌株处,机电响应表现出坚固的指数依赖性,允许精确读出诸如胸部运动和关节弯曲的更高的应变运动。发现指数仪系数近似为20,与装载水平无关,并且有效高达80%;这种一致的性能是由于复合材料的乳液模板化微观结构。鲁棒行为可以利用纳米复合材料促进非线性状态中的高应变感测,其中相对电阻变化值超过10(7),使得能够高度精确的身体运动监测。

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