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基于精确交换能量密度的密度泛函重新审视过渡金属配合物中的自旋对称性破缺和超精细耦合

Spin-Symmetry Breaking and Hyperfine Couplings in Transition-Metal Complexes Revisited Using Density Functionals Based on the Exact-Exchange Energy Density.

作者信息

Wodyński Artur, Lauw Bryan, Reimann Marc, Kaupp Martin

机构信息

Technische Universität Berlin, Institut für Chemie, Theoretische Chemie/Quantenchemie, Sekr. C7, Straße des 17. Juni 135, Berlin, D-10623, Germany.

出版信息

J Chem Theory Comput. 2024 Mar 12;20(5):2033-2048. doi: 10.1021/acs.jctc.3c01422. Epub 2024 Feb 27.

Abstract

A small set of mononuclear manganese complexes evaluated previously for their Mn hyperfine couplings (HFCs) has been analyzed using density functionals based on the exact-exchange energy density─in particular, the spin symmetry breaking (SSB) found previously when using hybrid functionals. Employing various strong-correlation corrected local hybrids (scLHs) and strong-correlation corrected range-separated local hybrids (scRSLHs) with or without additional corrections to their local mixing functions (LMFs) to mitigate delocalization errors (DE), the SSB and the associated dipolar HFCs of [Mn(CN)], MnO, [Mn(CN)N], and [Mn(CN)NO] (the latter with cluster embedding) have been examined. Both strong-correlation (sc)-correction and DE-correction terms help to diminish SSB and correct the dipolar HFCs. The DE corrections are more effective, and the effects of the sc corrections depend on their damping factors. Interestingly, the DE-corrections reduce valence-shell spin polarization (VSSP) and thus SSB by locally enhancing exact-exchange (EXX) admixture near the metal center and thereby diminishing spin-density delocalization onto the ligand atoms. In contrast, sc corrections diminish EXX admixture locally, mostly on specific ligand atoms. This then reduces VSSP and SSB as well. The performance of scLHs and scRSLHs for the isotropic Mn HFCs has also been analyzed, with particular attention to core-shell spin-polarization contributions. Further sc-corrected functionals, such as the KP16/B13 construction and the DM21 deep-neural-network functional, have been examined.

摘要

之前对一小部分单核锰配合物的锰超精细耦合(HFCs)进行了评估,现已使用基于精确交换能量密度的密度泛函进行分析,特别是对之前使用杂化泛函时发现的自旋对称性破缺(SSB)进行分析。采用各种具有强关联校正的局域杂化泛函(scLHs)和具有强关联校正的范围分离局域杂化泛函(scRSLHs),对其局域混合函数(LMFs)进行或不进行额外校正以减轻离域误差(DE),研究了[Mn(CN)]、MnO、[Mn(CN)N]和[Mn(CN)NO](后者采用团簇嵌入)的SSB和相关的偶极HFCs。强关联(sc)校正项和DE校正项都有助于减少SSB并校正偶极HFCs。DE校正更有效,sc校正的效果取决于其阻尼因子。有趣的是,DE校正通过在金属中心附近局部增强精确交换(EXX)混合来减少价壳层自旋极化(VSSP),从而减少SSB,进而减少自旋密度向配体原子的离域。相比之下,sc校正局部减少EXX混合,主要是在特定的配体原子上。这也会降低VSSP和SSB。还分析了scLHs和scRSLHs对各向同性锰HFCs的性能,特别关注核壳自旋极化贡献。还研究了进一步的sc校正泛函,如KP16/B13结构和DM21深度神经网络泛函。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/15d7/10938646/bcdde61017ad/ct3c01422_0001.jpg

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