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Born-oppenheimer and non-born-oppenheimer, atomic and molecular calculations with explicitly correlated gaussians

机译:出生奥本海默和非出生奥本海默,原子和分子计算以及明确相关的高斯

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摘要

The current state of efforts to use explicitly correlated Gaussian functions (ECGs) in calculations of small atomic and molecular systems with very high accuracy is studied. Such high accuracy can be achieved either by performing very precise Born-Oppenheimer (BO) calculations and correcting the results for adiabatic and nonadiabatic effects or by treating the nuclei and electrons on equal footing and explicitly including their motions in the Hamiltonian and in the wave function. It is shown that by using large basis sets of ECGs and by variationally optimizing their nonlinear parameters with a method based on the analytical energy gradient it is possible to determine the energies of ground and excited states of these systems with an accuracy approaching the accuracy of the most precise experimental measurements. In moving forward with the development of ECG techniques for very accurate BO and non-BO atomic and molecular calculations, several directions need to be considered.
机译:研究了使用显式相关的高斯函数(ECG)以非常高的精度计算小型原子和分子系统的当前工作状态。可以通过执行非常精确的Born-Oppenheimer(BO)计算并校正绝热和非绝热效应的结果,或者通过在相等的位置上处理原子核和电子,并明确地将它们的运动包含在哈密顿量和波动函数中,来实现如此高的精度。 。结果表明,通过使用大型基础心电图集,并通过基于解析能量梯度的方法对非线性参数进行可变优化,可以确定这些系统的基态和激发态能量,其准确度接近于电导率。最精确的实验测量。随着ECG技术的发展,用于非常精确的BO和非BO原子和分子计算,需要考虑几个方向。

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