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二次自旋轨道电子 g 张量机制。

Quadratic Spin-Orbit Mechanism of the Electronic g-Tensor.

机构信息

CEITEC─Central European Institute of Technology, Masaryk University, Kamenice 5, Brno CZ-62500, Czechia.

Department of Chemistry, Faculty of Science, Masaryk University, Kamenice 5, Brno CZ-62500, Czechia.

出版信息

J Chem Theory Comput. 2023 Mar 28;19(6):1765-1776. doi: 10.1021/acs.jctc.2c01213. Epub 2023 Mar 10.

Abstract

Understanding how the electronic g-tensor is linked to the electronic structure is desirable for the correct interpretation of electron paramagnetic resonance spectra. For heavy-element compounds with large spin-orbit (SO) effects, this is still not completely clear. We report our investigation of quadratic SO contributions to the g-shift in heavy transition metal complexes. We implemented third-order perturbation theory in order to analyze the contributions arising from frontier molecular spin orbitals (MSOs). We show that the dominant quadratic SO term─spin-Zeeman (SO/SZ)─generally makes a negative contribution to the g-shift, irrespective of the particular electronic configuration or molecular symmetry. We further analyze how the SO/SZ contribution adds to or subtracts from the linear orbital-Zeeman (SO/OZ) contribution to the individual principal components of the g-tensor. Our study suggests that the SO/SZ mechanism decreases the anisotropy of the g-tensor in early transition metal complexes and increases it in late transition metal complexes. Finally, we apply MSO analysis to the investigation of g-tensor trends in a set of closely related Ir and Rh pincer complexes and evaluate the influence of different chemical factors (the nuclear charge of the central atom and the terminal ligand) on the magnitudes of the g-shifts. We expect our conclusions to aid the understanding of spectra in magnetic resonance investigations of heavy transition metal compounds.

摘要

了解电子 g 张量如何与电子结构相关联对于正确解释电子顺磁共振谱是必要的。对于具有大自旋轨道(SO)效应的重元素化合物,这仍然不完全清楚。我们报告了我们对重过渡金属配合物中二次 SO 对 g 位移贡献的研究。我们实施了三阶微扰理论,以分析源于前沿分子自旋轨道(MSOs)的贡献。我们表明,主导的二次 SO 项——自旋-塞曼(SO/SZ)——通常对 g 位移产生负贡献,无论特定的电子构型或分子对称性如何。我们进一步分析了 SO/SZ 贡献如何加到或减去线性轨道-塞曼(SO/OZ)对 g 张量各个主分量的贡献。我们的研究表明,SO/SZ 机制降低了早期过渡金属配合物中 g 张量的各向异性,并增加了晚期过渡金属配合物中的各向异性。最后,我们将 MSO 分析应用于一组密切相关的 Ir 和 Rh 夹式配合物的 g 张量趋势研究,并评估了不同化学因素(中心原子的核电荷和末端配体)对 g 位移大小的影响。我们期望我们的结论有助于理解磁共振研究中重过渡金属化合物的光谱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af44/10061661/6c9ca9f7db3a/ct2c01213_0002.jpg

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