电子-核运动的量子通量密度:精确与玻恩-奥本海默动力学

T. Schaupp, V. Engel
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引用次数: 3

摘要

我们研究了一个模型系统中的耦合电子-核动力学,以比较电子和核通量密度的数值精确计算与从Born-Oppenheimer (BO)近似得到的结果。在总波函数的绝热展开中,我们确定了有助于通量密度的项。发现只有涉及不同电子态之间相互作用的非对角线元素对电子通量有贡献,而在核情况下,主要贡献属于BO电子态。引入了新的通量密度,在电子和核的情况下,主要贡献包含在对应于BO态的分量中。因此,它们可以在BO近似内确定,并且与精确结果非常吻合。这篇文章是主题问题“没有波恩-奥本海默近似的化学”的一部分。
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Quantum flux densities for electronic–nuclear motion: exact versus Born–Oppenheimer dynamics
We study the coupled electronic–nuclear dynamics in a model system to compare numerically exact calculations of electronic and nuclear flux densities with those obtained from the Born–Oppenheimer (BO) approximation. Within the adiabatic expansion of the total wave function, we identify the terms which contribute to the flux densities. It is found that only off-diagonal elements that involve the interaction between different electronic states contribute to the electronic flux whereas in the nuclear case the major contribution belongs to the BO electronic state. New flux densities are introduced where in both, the electronic and the nuclear case, the main contribution is contained in the component corresponding to the BO state. As a consequence, they can be determined within the BO approximation, and an excellent agreement with the exact results is found. This article is part of the theme issue ‘Chemistry without the Born–Oppenheimer approximation’.
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