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使用FLOSIC来理解阴离子与溶剂的相互作用。

Use of FLOSIC for understanding anion-solvent interactions.

作者信息

Pederson Mark R, Withanage Kushantha P K, Hooshmand Zahra, Johnson Alex I, Baruah Tunna, Yamamoto Yoh, Zope Rajendra R, Kao Der-You, Shukla Priyanka B, Johnson J Karl, Peralta Juan E, Jackson Koblar A

机构信息

Physics Department, University of Texas at El Paso, El Paso, Texas 79968, USA.

NASA Postdoctoral Program, NASA Goddard Space Flight Center, Greenbelt, Maryland 20771, USA.

出版信息

J Chem Phys. 2023 Oct 21;159(15). doi: 10.1063/5.0172300.

Abstract

An Achille's heel of lower-rung density-functional approximations is that the highest-occupied-molecular-orbital energy levels of anions, known to be stable or metastable in nature, are often found to be positive in the worst case or above the lowest-unoccupied-molecular-orbital levels on neighboring complexes that are not expected to accept charge. A trianionic example, [Cr(C2O4)3]3-, is of interest for constraining models linking Cr isotope ratios in rock samples to oxygen levels in Earth's atmosphere over geological timescales. Here we describe how crowd sourcing can be used to carry out self-consistent Fermi-Löwdin-Orbital-Self-Interaction corrected calculations (FLOSIC) on this trianion in solution. The calculations give a physically correct description of the electronic structure of the trianion and water. In contrast, uncorrected local density approximation (LDA) calculations result in approximately half of the anion charge being transferred to the water bath due to the effects of self-interaction error. Use of group-theory and the intrinsic sparsity of the theory enables calculations roughly 125 times faster than our initial implementation in the large N limit reached here. By integrating charge density densities and Coulomb potentials over regions of space and analyzing core-level shifts of the Cr and O atoms as a function of position and functional, we unambiguously show that FLOSIC, relative to LDA, reverses incorrect solute-solvent charge transfer in the trianion-water complex. In comparison to other functionals investigated herein, including Hartree-Fock and the local density approximation, the FLOSIC Cr 1s eigenvalues provide the best agreement with experimental core ionization energies.

摘要

低阶密度泛函近似的一个致命弱点是,已知在自然界中稳定或亚稳的阴离子的最高占据分子轨道能级,在最坏的情况下往往为正,或者高于相邻不预期接受电荷的配合物的最低未占据分子轨道能级。一个三阴离子的例子,[Cr(C₂O₄)₃]³⁻,对于在地质时间尺度上约束将岩石样品中的铬同位素比率与地球大气中的氧水平联系起来的模型很有意义。在这里,我们描述了如何利用众包来对该溶液中的三阴离子进行自洽的费米-洛丁-轨道-自相互作用校正计算(FLOSIC)。这些计算给出了三阴离子和水的电子结构的物理正确描述。相比之下,未校正的局域密度近似(LDA)计算由于自相互作用误差的影响,导致大约一半的阴离子电荷转移到水浴中。利用群论和该理论的固有稀疏性,使得计算速度比我们在此处达到的大N极限下的初始实现快约125倍。通过在空间区域上积分电荷密度和库仑势,并分析Cr和O原子的芯能级位移作为位置和泛函的函数,我们明确表明,相对于LDA,FLOSIC扭转了三阴离子-水配合物中不正确的溶质-溶剂电荷转移。与本文研究的其他泛函(包括哈特里-福克和局域密度近似)相比,FLOSIC的Cr 1s本征值与实验芯电离能的一致性最好。

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