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Electrical conductivity maps in graphene nanoplatelet/silicon nitride composites using conducting scanning force microscopy

机译:使用导电扫描力显微镜绘制石墨烯纳米片/氮化硅复合材料的电导率图

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摘要

Graphene nanoplatelet (GNP)/silicon nitride (Si3N4) ceramic composites containing 12 and 15 wt. of GNPs are prepared by mixing the nanoplatelets and the ceramic powders in a liquid medium followed by densification of the dried mixture by spark plasma sintering. The electrical conductivity of these composites is investigated at the nanoscale by conducting scanning force microscopy to understand the influence of the carbon phase content when above the percolation threshold. The establishment of a conducting network is revealed from the conduction measured at GNPs emerging at the surface of the composites. Current maps obtained for two orientations of the composites, parallel and perpendicular to the press sintering axis, show a preferential orientation of the nanoplatelets within the ceramic matrix. The effective current per conducting pixel, determined from the corresponding maps, is four times larger for the 15 wt. GNP composite than for the 12 wt. one. For the same composite (15 wt.), differences in the effective current are measured for each of the two probing configurations. These results are interpreted in terms of unbalanced weight and nature of the resistors forming the percolated network.
机译:将纳米片和陶瓷粉末在液体介质中混合,然后通过火花等离子体烧结使干燥混合物致密化,制备了含有12和15重量%GNPs的石墨烯纳米片(GNP)/氮化硅(Si3N4)陶瓷复合材料。通过扫描力显微镜在纳米尺度上研究了这些复合材料的电导率,以了解碳相含量在高于渗流阈值时的影响。从复合材料表面出现的GNPs测量的传导中可以看出导电网络的建立。为复合材料的两个方向(平行于和垂直于压机烧结轴)获得的电流图显示了陶瓷基体内纳米片的优先取向。根据相应的图确定,15 wt.% GNP 复合材料的每个导电像素的有效电流是 12 wt.% GNP 复合材料的四倍。对于相同的复合材料(15 wt.%),测量两种探测配置中每一种的有效电流差异。这些结果根据形成渗滤网络的电阻器的不平衡重量和性质来解释。

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