General Spin-Restricted Open-Shell Configuration Interaction Approach: Application to Metal K-Edge X-ray Absorption Spectra of Ferro- and Antiferromagnetically Coupled Dimers.

IF 2.7 2区 化学 Q3 CHEMISTRY, PHYSICAL The Journal of Physical Chemistry A Pub Date : 2025-01-09 Epub Date: 2024-12-16 DOI:10.1021/acs.jpca.4c05228
Tiago Leyser da Costa Gouveia, Dimitrios Maganas, Frank Neese
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Abstract

In this work, we present a generalized implementation of the previously developed restricted open-shell configuration interaction singles (ROCIS) family of methods. The new method allows us to treat high-spin (HS) ferro- as well as antiferromagnetically (AF) coupled systems while retaining the total spin as a good quantum number. To achieve this important and nontrivial goal, we employ the machinery of the iterative configuration expansion (ICE) method, which is able to tackle general configuration interaction (CI) problems on the basis of spin-adapted configuration state functions (CSFs). While ICE is designed to work in restricted orbital spaces, the new general-spin ROCIS (GS-ROCIS) method is designed to be applicable to larger molecules by employing a prototyping strategy. This new method can be applied to closed-shell, high-spin open-shell, as well as antiferromagnetic reference CSFs. In addition, GS-ROCIS can be combined with the pair natural orbital (PNO) machinery in the form of the PNO-GS-ROCIS method. With this extension, one can drastically reduce the required virtual space in the vicinity of the involved core orbitals, leading to computational savings of several orders of magnitude with negligible (<1%) loss in accuracy. To demonstrate the use of the new methodology, the metal K pre-edge X-ray absorption excitation problem of an antiferromagnetically coupled copper model dimer was investigated. By first analyzing a model copper dimer, it is shown that even for the minimum core excitation problem that involves the two antiferromagnetically coupled singly occupied orbitals and one virtual orbital, the resulting GS-ROCIS and broken-symmetry configuration interaction singles (BS-CIS) spectra may differ in terms of the number, energy position, and relative intensity of the computed bands. Furthermore, the methodology was validated to perform equally well in computing the K-edge spectra of antiferromagnetic nickel oxide dimers and mixed-valence cobalt oxide trimers. Collectively, the present development represents an important methodological advance in the application of theoretical X-ray spectroscopy.

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一般自旋限制开壳组态相互作用方法:应用于铁和反铁磁耦合二聚体的金属k -边x射线吸收光谱。
在这项工作中,我们介绍了之前开发的受限开壳构型相互作用单数(ROCIS)系列方法的广义实现。新方法允许我们处理高自旋(HS)铁磁耦合系统和反铁磁耦合系统,同时保留总自旋作为良好量子数。为了实现这一重要而非难的目标,我们采用了迭代构型展开(ICE)方法,该方法能够在自旋适应构型状态函数(CSF)的基础上解决一般构型相互作用(CI)问题。ICE 设计用于受限轨道空间,而新的通用自旋 ROCIS(GS-ROCIS)方法则采用原型设计策略,适用于更大的分子。这种新方法可用于闭壳、高自旋开壳以及反铁磁参考 CSF。此外,GS-ROCIS 还可以与对自然轨道(PNO)机制相结合,形成 PNO-GS-ROCIS 方法。通过这种扩展,我们可以大大减少所涉及的核心轨道附近所需的虚拟空间,从而节省几个数量级的计算量,而且可以忽略(
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来源期刊
The Journal of Physical Chemistry A
The Journal of Physical Chemistry A 化学-物理:原子、分子和化学物理
CiteScore
5.20
自引率
10.30%
发文量
922
审稿时长
1.3 months
期刊介绍: The Journal of Physical Chemistry A is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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