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Linking the electronic structure of solids to their thermodynamic and kinetic properties

机译:将固体的电子结构与其热力学和动力学特性联系起来

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摘要

Predicting measurable thermodynamic and kinetic properties of solids from first-principles requires the use of statistical mechanics. A major challenge for materials of technological importance arises from the fact that first-principles electronic structure calculations of elementary excited states are computationally very demanding. Hence statistical mechanical averaging over the spectrum of excited states must rely on the use of effective Hamiltonians that are parameterized by a limited number of first-principles electronic structure calculations, but nevertheless predict energies of excited states with a high level accuracy. Here we review important effective Hamiltonians that account for vibrational and configurational degrees of freedom in multi-component crystalline solids and show how they can be used to predict phase stability as a function of composition and temperature as well as kinetic transport constants such as diffusion coefficients in non-dilute crystalline solids.
机译:根据第一性原理预测固体的可测量热力学和动力学特性需要使用统计力学。具有技术重要性的材料的主要挑战来自以下事实,即基本原理的基本原理电子结构计算对计算的要求很高。因此,在激发态频谱上的统计机械平均必须依赖于有效哈密顿量的使用,这些哈密顿量是通过有限数量的第一原理电子结构计算来参数化的,但是仍然可以以高水平的精度预测激发态的能量。在这里,我们回顾了重要的有效哈密顿量,它们解释了多组分结晶固体中的振动和构型自由度,并展示了如何将其用于预测作为组成和温度的函数的相稳定性以及动力学输运常数(例如扩散系数)。非稀释的结晶固体。

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