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Highly Sensitive Graphene/Polydimethylsiloxane Composite Films near the Threshold Concentration with Biaxial Stretching

机译:具有双轴拉伸阈值浓度的高灵敏度石墨烯/聚二甲基硅氧烷复合膜

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摘要

Uniformly dispersed graphene effectively improves the strain-sensing capability of the composite film under a low graphene load in nanocomposites prepared with polydimethylsiloxane (PDMS) and graphene (GNP) monolayer powder. The threshold concentration of graphene was determined by loading nanocomposites at different temperatures. For different concentrations, when using traditional uniaxial stretching, the rate of resistance change of films near the threshold concentration is five times higher than the rate of films with a high concentration. Compared with traditional uniaxial stretching, the biaxial stretching we introduced can effectively improve the sensitivity of the film by an order of magnitude. The change in the resistance of the film near the threshold concentration is due to the change of the tunnel length and the cross-section of the tunnel, whereas the high concentration of the film is due to the change of the conductive path inside the film. Biaxial stretching has different effects on films with different concentrations, but the final effect of increasing sensitivity is the same. This study provides guidance for improving the strain-sensing sensitivity of GNP/PDMS composite films and the application of biaxial tension in detecting human motions.
机译:在由聚二甲基硅氧烷(PDMS)和石墨烯(GNP)单层粉末制备的纳米复合材料中,均匀分散的石墨烯可有效提高复合膜在低石墨烯负载下的应变传感能力。通过在不同温度下加载纳米复合材料来确定石墨烯的阈值浓度。对于不同的浓度,当使用传统的单轴拉伸时,接近阈值浓度的薄膜的电阻变化率是高浓度薄膜的电阻率的五倍。与传统的单轴拉伸相比,我们引入的双轴拉伸可以有效地将薄膜的灵敏度提高一个数量级。接近阈值浓度的薄膜电阻的变化是由于隧道长度和隧道横截面的变化,而薄膜的高浓度是由于薄膜内部导电路径的变化。双轴拉伸对不同浓度的薄膜有不同的影响,但是增加感光度的最终效果是相同的。这项研究为提高GNP / PDMS复合膜的应变感应灵敏度以及双轴张力在检测人体运动中的应用提供了指导。

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