NMR Magnetic Shielding in Transition Metal Compounds Containing Cadmium, Platinum, and Mercury

IF 2.6 4区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR
Andy D. Zapata-Escobar, Alejandro F. Maldonado, Jose L. Mendoza-Cortes, G. Aucar
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Abstract

In this article, we delve into the intricate behavior of electronic mechanisms underlying NMR magnetic shieldings σ in molecules containing heavy atoms, such as cadmium, platinum, and mercury. Specifically, we explore PtXn−2 (X = F, Cl, Br, I; n = 4, 6) and XCl2Te2Y2H6 (X = Cd, Hg; Y = N, P) molecular systems. It is known that the leading electronic mechanisms responsible for the relativistic effects on σ are well characterized by the linear response with elimination of small components model (LRESC). In this study, we present the results obtained from the innovative LRESC-Loc model, which offers the same outcomes as the LRESC model but employs localized molecular orbitals (LMOs) instead of canonical MOs. These LMOs provide a chemist’s representation of atomic core, lone pairs, and bonds. The whole set of electronic mechanisms responsible of the relativistic effects can be expressed in terms of both non-ligand-dependent and ligand-dependent contributions. We elucidate the electronic origins of trends and behaviors exhibited by these diverse mechanisms in the aforementioned molecular systems. In PtX4−2 molecules, the predominant relativistic mechanism is the well-established one-body spin–orbit (σSO(1)) mechanism, while the paramagnetic mass–velocity (σMv) and Darwin (σDw) contributing mechanisms also demand consideration. However, in PtX6−2 molecules, the σ(Mv/Dw) contribution surpasses that of the SO(1) mechanism, thus influencing the overall ligand-dependent contributions. As for complexes containing Cd and Hg, the ligand-dependent contributions exhibit similar magnitudes when nitrogen is substituted with phosphorus. The only discrepancy arises from the σSO(1) contribution, which changes sign between the two molecules due to the contribution of bond orbitals between the metal and tellurium atoms.
含镉、铂和汞过渡金属化合物的核磁共振磁屏蔽
在这篇文章中,我们深入研究了含有重原子的分子(如镉、铂和汞)中NMR磁屏蔽σ的电子机制的复杂行为。具体而言,我们探索了PtXn−2(X=F,Cl,Br,I;n=4,6)和XCl2Te2Y2H6(X=Cd,Hg;Y=n,P)分子系统。众所周知,引起σ相对论效应的主要电子机制具有消除小部件模型(LRESC)的线性响应的良好特征。在这项研究中,我们展示了从创新的LRESC-Loc模型中获得的结果,该模型提供了与LRESC模型相同的结果,但使用了局域分子轨道(LMO)而不是规范MO。这些LMO提供了化学家对原子核、孤对和键的表示。负责相对论效应的整套电子机制可以用非配体依赖性和配体依赖性的贡献来表达。我们阐明了上述分子系统中这些不同机制所表现出的趋势和行为的电子起源。在PtX4−2分子中,主要的相对论机制是公认的单体自旋-轨道(σSO(1))机制,而顺磁质量-速度(σMv)和达尔文(σDw)的贡献机制也需要考虑。然而,在PtX6−2分子中,σ(Mv/Dw)的贡献超过了SO(1)机制,从而影响了整体配体依赖性贡献。对于含Cd和Hg的配合物,当氮被磷取代时,配体依赖性贡献表现出相似的大小。唯一的差异来自σSO(1)的贡献,由于金属和碲原子之间的键轨道的贡献,σSO(2)的贡献改变了两个分子之间的符号。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Magnetochemistry
Magnetochemistry Chemistry-Chemistry (miscellaneous)
CiteScore
3.90
自引率
11.10%
发文量
145
审稿时长
11 weeks
期刊介绍: Magnetochemistry (ISSN 2312-7481) is a unique international, scientific open access journal on molecular magnetism, the relationship between chemical structure and magnetism and magnetic materials. Magnetochemistry publishes research articles, short communications and reviews. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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