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Quantum Transport Modeling From First Principles

机译:基于第一性原理的量子传输建模

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In the past two decades, significant progress has been achieved in the large-scale fabrication of nanostructures where quantum transport properties of charge and spin are closely coupled to the discreteness of the device material. Multitudes of emerging device concepts and new materials with interesting application potential have been discovered. In order to understand the experimental data and device physics of nanoelectronics, an important task is to develop appropriate theoretical formalisms and associated modeling tools which are capable of making quantitative and material specific predictions of device characteristics without any phenomenological parameters. Here we review the atomistic modeling method based on carrying out density functional theory (DFT) within the nonequilibrium Green's function (NEGF) formalism. Since its original implementation ten years ago, the NEGF–DFT technique has emerged as a very powerful and practically very useful method for predicting nonlinear and nonequilibrium quantum transport properties of nanoelectronics. Recent new developments concerning nonequilibrium disorder scattering will also be presented. Large-scale and scalable computations have allowed NEGF–DFT to model Si structures reaching the present day realistic channel sizes.
机译:在过去的二十年中,纳米结构的大规模制造已经取得了重大进展,其中电荷和自旋的量子传输特性与器件材料的离散性紧密相关。已经发现了许多新兴的设备概念和具有有趣应用潜力的新材料。为了了解纳米电子学的实验数据和器件物理,一项重要任务是开发适当的理论形式学和相关的建模工具,这些工具可以对器件特性进行定量和材料特定的预测,而无需任何现象学参数。在这里,我们回顾在非平衡格林函数(NEGF)形式主义内基于执行密度泛函理论(DFT)的原子建模方法。自十年前首次实施以来,NEGF-DFT技术已成为预测纳米电子非线性和非平衡量子传输性质的一种非常强大且实用的方法。还将介绍有关非平衡无序散射的最新进展。大规模且可扩展的计算使NEGF-DFT可以对达到当今实际通道尺寸的Si结构进行建模。

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