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Insulator coated metal nanoparticles with a core/shell geometry exhibit a temperature sensitivity similar to advanced spinels

机译:具有核/壳几何形状的绝缘体涂覆的金属纳米粒子表现出与高级尖晶石相似的温度敏感性

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The preparation of carbon-coated copper nanoparticles with different carbon layers resulted in materials with a highly sensitive pressure and temperature dependent conductivity. The core/shell geometry of these carbon/metal composites afforded two distinctly different electrical behaviors depending on the carbon layer properties. Graphene layers with a predominant sp(2) character showed an ill-defined bandgap structure as evidenced by UV-vis diffuse reflectance spectroscopy. The resulting composites were weak conductors with low sensitivity. Use of predominately insulating carbon layers with a well-defined bandgap of above 1.9 eV resulted in composites with a material constant beta of over 4700 K which is comparable to currently used commercial spinels. A theoretical analysis and detailed material characterization by Raman spectroscopy, X-ray diffraction, C-13 NMR spectroscopy and thermoanalysis suggested a tunneling based conduction mechanism in these core/shell materials. This interpretation was supported by a good correlation between experimental data and the estimated effects arising from the theoretical analysis of the tunneling effects. (c) 2007 Elsevier B.V. All rights reserved.
机译:具有不同碳层的碳包覆的铜纳米颗粒的制备导致材料具有高度敏感的压力和温度依赖性导电性。这些碳/金属复合材料的核/壳几何形状根据碳层的性质提供两种截然不同的电行为。具有主要sp(2)特征的石墨烯层显示出不明确的带隙结构,这由UV-vis漫反射光谱法证明。所得复合材料是灵敏度低的弱导体。具有明确定义的带隙大于1.9 eV的主要绝缘碳层的使用导致复合材料的材料常数β超过4700 K,与目前使用的商业尖晶石相当。通过拉曼光谱,X射线衍射,C-13 NMR光谱和热分析进行的理论分析和详细的材料表征表明,在这些核/壳材料中基于隧穿的传导机理。实验数据与隧道效应的理论分析所产生的估计效应之间的良好相关性为这种解释提供了支持。 (c)2007 Elsevier B.V.保留所有权利。

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