首页> 美国卫生研究院文献>Sensors (Basel Switzerland) >Electrical Percolation Threshold and Size Effects in Polyvinylpyrrolidone-Oxidized Single-Wall Carbon Nanohorn Nanocomposite: The Impact for Relative Humidity Resistive Sensors Design
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Electrical Percolation Threshold and Size Effects in Polyvinylpyrrolidone-Oxidized Single-Wall Carbon Nanohorn Nanocomposite: The Impact for Relative Humidity Resistive Sensors Design

机译:聚乙烯吡咯烷酮氧化单壁碳纳米纳米复合材料的电渗滤阈值和尺寸效应:对相对湿度电阻传感器设计的影响

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摘要

This paper reports, for the first time, on the electrical percolation threshold in oxidized carbon nanohorns (CNHox)–polyvinylpyrrolidone (PVP) films. We demonstrate—starting from the design and synthesis of the layers—how these films can be used as sensing layers for resistive relative humidity sensors. The morphology and the composition of the sensing layers are investigated through Scanning Electron Microscopy (SEM), Atomic Force Microscopy (AFM), and RAMAN spectroscopy. For establishing the electrical percolation thresholds of CNHox in PVP, these nanocomposite thin films were deposited on interdigitated transducer (IDT) dual-comb structures. The IDTs were processed both on a rigid Si/SiO2 substrate with a spacing of 10 µm between metal digits, and a flexible substrate (polyimide) with a spacing of 100 µm. The percolation thresholds of CNHox in the PVP matrix were equal to (0.05–0.1) wt% and 3.5 wt% when performed on 10 µm-IDT and 100 µm-IDT, respectively. The latter value agreed well with the percolation threshold value of about 4 wt% predicted by the aspect ratio of CNHox. In contrast, the former value was more than an order of magnitude lower than expected. We explained the percolation threshold value of (0.05–0.1) wt% by the increased probability of forming continuous conductive paths at much lower CNHox concentrations when the gap between electrodes is below a specific limit. The change in the nanocomposite’s longitudinal Young modulus, as a function of the concentration of oxidized carbon nanohorns in the polymer matrix, is also evaluated. Based on these results, we identified a new parameter (i.e., the inter-electrode spacing) affecting the electrical percolation threshold in micro-nano electronic devices. The electrical percolation threshold’s critical role in the resistive relative-humidity sensors’ design and functioning is clearly emphasized.
机译:本文首次报告氧化碳纳米醇(CNHOX) - 聚乙烯基吡咯烷酮(PVP)膜中的电渗滤阈值。我们展示 - 从层的设计和合成开始 - 如何将这些薄膜用作电阻相对湿度传感器的传感层。通过扫描电子显微镜(SEM),原子力显微镜(AFM)和拉曼光谱来研究传感层的形态和组合物。为了在PVP中建立CNHOX的电渗透阈值,将这些纳米复合薄膜沉积在交叉的换能器(IDT)双梳结构上。在金属位之间的刚性Si / SiO 2基板上,金属位与金属位之间的间隔和间距为100μm的柔性基板(聚酰亚胺)。当在10μm-IDT和100μm-Idt中进行时,PVP基质中CNHOX的渗透阈值等于(0.05-0.1)wt%和3.5wt%。后一值与CNHOX的纵横比预测的约4wt%的渗透阈值很好。相反,前值比预期低的数量级。当电极之间的间隙低于特定极限时,通过在更低的CNHOX浓度下形成连续导电路径的增加的概率来解释(0.05-0.1)Wt%的渗透阈值。还评价了纳米复合材料纵向幼年模量的变化,作为聚合物基质中氧化碳纳米浓度的函数。基于这些结果,我们确定了影响微纳米电子器件中的电渗滤阈值的新参数(即电极间隔)。显然强调了电渗滤阈值在电阻相对湿度传感器的设计和功能中的关键作用。

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