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首页> 外文期刊>Journal of Physics. Condensed Matter >Anomalous charge transport in reduced graphene oxide films on a uniaxially strained elastic substrate
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Anomalous charge transport in reduced graphene oxide films on a uniaxially strained elastic substrate

机译:单轴应变弹性基板上的石墨烯氧化物膜中的异常电荷输送

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摘要

We investigate temperature-dependent charge transport in reduced graphene oxide (rGO) films coated on flexible polydimethylsiloxane (PDMS) substrates which are subject to uniaxial strain. Variable strain, up to 10%, results in an anisotropic morphology comprising of quasi-periodic linear array of deformations which are oriented perpendicular to the direction of strain. The anisotropy is reflected in the charge transport measurements, when conduction in the direction parallel and perpendicular to the applied strain are compared. Temperature dependence of resistance is measured for different values of strain in the temperature interval 80-300 K. While the resistance increases significantly upon application of strain, the temperature-dependent response shows anomalous decrease in resistance ratio R-80 (K)/R-300 K upon application of strain. This observation of favorable conduction processes under strain is further corroborated by reduced activation energy analysis of the temperature-dependent transport data. These anomalous transport features can be reconciled based on mutually competing effects of two processes: (i) thinning of graphene at the sites of periodic deformations, which tends to enhance the overall resistance by a purely geometrical effect, and (ii) locally enhanced inter-flake coupling in these same regions which contributes to improved temperature-dependent conduction.
机译:我们研究了涂覆在柔性聚二甲基硅氧烷(PDMS)基材上的含石墨烯(RGO)膜中的温度依赖性电荷传输,其受到单轴应变的柔性聚二甲基硅氧烷(PDMS)基材。可变菌株,高达10%,导致各向异性形态,其包括垂直于应变方向定向的准周期性的变形阵列。当比较平行的方向和垂直于所施加的应变的方向传导时,各向异性反映在电荷输送测量中。测量电阻的温度依赖性在温度间隔80-300k中的不同应变值测量。虽然在施加菌株时电阻显着增加,但温度依赖性响应显示阻力比R-80(k)/ R-的异常降低在施加菌株时300 k。通过减少温度依赖的传输数据的活化能量分析,进一步证实了这种良好的传导过程的这种观察。这些异常传输特征可以基于两个过程的相互竞争效果来协调:(i)在周期性变形部位的条件下将石墨烯变薄,这倾向于通过纯几何效果提高整体电阻,并且(ii)局部增强在这些相同区域中的剥落耦合,这有助于改善温度依赖性传导。

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