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高效的原子核量子动能和动量分布的第一性原理计算。

Efficient first-principles calculation of the quantum kinetic energy and momentum distribution of nuclei.

机构信息

Physical and Theoretical Chemistry Laboratory, University of Oxford, Oxford, United Kingdom.

出版信息

Phys Rev Lett. 2012 Sep 7;109(10):100604. doi: 10.1103/PhysRevLett.109.100604.

Abstract

Light nuclei at room temperature and below exhibit a kinetic energy which significantly deviates from the predictions of classical statistical mechanics. This quantum kinetic energy is responsible for a wide variety of isotope effects of interest in fields ranging from chemistry to climatology. It also furnishes the second moment of the nuclear momentum distribution, which contains subtle information about the chemical environment and has recently become accessible to deep inelastic neutron scattering experiments. Here, we show how, by combining imaginary time path integral dynamics with a carefully designed generalized Langevin equation, it is possible to dramatically reduce the expense of computing the quantum kinetic energy. We also introduce a transient anisotropic Gaussian approximation to the nuclear momentum distribution which can be calculated with negligible additional effort. As an example, we evaluate the structural properties, the quantum kinetic energy, and the nuclear momentum distribution for a first-principles simulation of liquid water.

摘要

在室温及以下条件下,轻核表现出的动能与经典统计力学的预测有显著差异。这种量子动能对从化学到气候学等各个领域中具有重要意义的各种同位素效应负责。它还提供了核动量分布的二阶矩,其中包含有关化学环境的微妙信息,并且最近已经可以通过深非弹性中子散射实验来获取。在这里,我们展示了如何通过将虚时间路径积分动力学与精心设计的广义朗之万方程相结合,来大大降低计算量子动能的成本。我们还引入了一种瞬态各向异性高斯近似的核动量分布,其计算所需的额外工作量可以忽略不计。作为一个例子,我们评估了第一性原理模拟液态水的结构性质、量子动能和核动量分布。

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