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Multiwall carbon-nanotube interconnects: radial effects on physical models and resistance calculations for various metal substrates

机译:多壁碳纳米管互连:各种金属基材的物理模型和电阻计算的径向效应

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Based on a model with singular attractive potential of equidistant conductive cylinders, we illustrate an approach to calculate the electron spectrum of metallic multiwall carbon nanotubes (MW CNT) with an arbitrary number of coaxial layers. We compute the number of electrically active channels, Nch, in the ideal case when all MW CNT shells are contacted to the electrodes, starting from the one-electron spectrum. The dependence of Nch on the temperature and on both the innermost and outermost shells radii allows us to discuss the potential performances of MW CNT interconnects, affecting the power dissipation of integrated circuits. Our description improves over the isolated shells model, where band structures remain unaffected from each other. It turns out that, for a small innermost radius MW CNT, when all the shell are contacted to the electrodes, the presence of a geometrical potential can be quite relevant. At the same time, we prove the relevance of the inter-shell in determining Nch, for an outermost shell having hundreds of nanometers radius. We then turn our attention to the junctions of carbon nanotubes with contacting metallic elements of a nanocircuit, carrying out numerical simulations on the contacts resistance, using multiple scattering theory and the effective media cluster approach. Calculations for different multiwalled nanotube-metal contacts yield quantitatively realistic results, from several to hundreds kOhm, depending on nanotube chirality, diameter and thickness. As an indicator of possible ‘radial current’ losses the inter-wall transparency coefficient for MW CNT has been also simulated.
机译:基于具有等距导电缸的奇异有吸引力电位的模型,我们说明了用任意数量的同轴层计算金属多壁碳纳米管(MW CNT)的电子光谱的方法。在从单电子光谱开始,我们计算所有MW CNT壳的理想情况下,在理想情况下计算电动通道N CH 。 N个 CH 的温度和最内和最外壳两个半径允许我们讨论MW CNT互连的潜在性能,影响集成电路的功率消耗的依赖性。我们的描述改进了隔离的壳模型,其中频带结构仍然不受影响。事实证明,对于一个小内半径MW CNT,当所有壳体与电极接触时,几何势的存在可以非常相关。同时,我们证明了壳体间的相关性,用于确定N CH ,用于具有数百纳米半径的最外壳。然后,我们把注意力转向碳纳米管的结与接触nanocircuit的金属元素,上的触点电阻进行数值模拟,使用多个散射理论和有效的媒体群集方法。不同多壁纳米管 - 金属触点的计算根据纳米管手性,直径和厚度,从几到数百kohm产生定量逼真的结果。作为可能的“径向电流”损失的指示,还模拟了MW CNT的壁壁透明度系数。

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