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首页> 外文期刊>The Journal of Chemical Physics >Directly patching high-level exchange-correlation potential based on fully determined optimized effective potentials
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Directly patching high-level exchange-correlation potential based on fully determined optimized effective potentials

机译:直接修补基于完全确定的优化有效潜力的高级交换相关潜力

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The key element in Kohn-Sham (KS) density functional theory is the exchange-correlation (XC) potential. We recently proposed the exchange-correlation potential patching (XCPP) method with the aim of directly constructing high-level XC potential in a large system by patching the locally computed, high-level XC potentials throughout the system. In this work, we investigate the patching of the exact exchange (EXX) and the random phase approximation (RPA) correlation potentials. A major challenge of XCPP is that a cluster's XC potential, obtained by solving the optimized effective potential equation, is only determined up to an unknown constant. Without fully determining the clusters' XC potentials, the patched system's XC potential is "uneven" in the real space and may cause non-physical results. Here, we developed a simple method to determine this unknown constant. The performance of XCPP-RPA is investigated on three one-dimensional systems: H-20, H10Li8, and the stretching of the H-19-H bond. We investigated two definitions of EXX: (i) the definition based on the adiabatic connection and fluctuation dissipation theorem (ACFDT) and (ii) the Hartree-Fock (HF) definition. With An-DT-type EXX, effective error cancellations were observed between the patched EXX and the patched RPA correlation potentials. Such error cancellations were absent for the HF- type EXX, which was attributed to the fact that for systems with fractional occupation numbers, the integral of the HF-type EXX hole is not -1. The KS spectra and band gaps from XCPP agree reasonably well with the benchmarks as we make the clusters large. Published by AIP Publishing.
机译:Kohn-Sham(KS)密度函数理论的关键元件是交换 - 相关性(XC)电位。我们最近提出了交换相关潜在修补(XCPP)方法,目的是通过在整个系统中修补本地计算的,高级XC电位来直接构建大型系统中的高级XC电位。在这项工作中,我们调查确切交换(EXX)和随机相位近似(RPA)相关电位的修补。 XCPP的主要挑战是通过求解优化的有效潜在方程而获得的集群的XC电位仅确定为未知常数。在不完全确定集群的XC电位的情况下,修补系统的XC潜力在真实空间中是“不均匀”,并且可能导致非物理结果。在这里,我们开发了一种确定这个未知常数的简单方法。在三维系统上研究了XCPP-RPA的性能:H-20,H10LI8和H-19-H键的拉伸。我们调查了exx的两个定义:(i)基于绝热连接和波动耗散定理(ACFDT)和(ii)Hartree-Fock(HF)定义的定义。通过AN-DT型EXX,在修补的EXX和缀有的RPA相关电位之间观察到有效的错误消除。对于HF型EXX不存在这种错误取消,其归因于用于具有分数占用数的系统的事实,HF型EXX孔的积分不是-1。 XCPP的KS光谱和频带间隙与基准相同,因为我们使群集大。通过AIP发布发布。

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