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通过振动光谱学视角观察金属-卤素键合

Metal-Halogen Bonding Seen through the Eyes of Vibrational Spectroscopy.

作者信息

Oliveira Vytor P, Marcial Bruna L, Machado Francisco B C, Kraka Elfi

机构信息

Departamento de Química, Instituto Tecnológico de Aeronáutica (ITA), São José dos Campos, 12228-900 São Paulo, Brazil.

Núcleo de Química, Instituto Federal Goiano (IF Goiano), Campus Morrinhos, 75650-000 Goiás, Brazil.

出版信息

Materials (Basel). 2019 Dec 20;13(1):55. doi: 10.3390/ma13010055.

Abstract

Incorporation of a metal center into halogen-bonded materials can efficiently fine-tune the strength of the halogen bonds and introduce new electronic functionalities. The metal atom can adopt two possible roles: serving as halogen acceptor or polarizing the halogen donor and acceptor groups. We investigated both scenarios for 23 metal-halogen dimers trans-M(Y)(NCHX-3) with M = Pd(II), Pt(II); Y = F, Cl, Br; X = Cl, Br, I; and NCHX-3 = 3-halopyridine. As a new tool for the quantitative assessment of metal-halogen bonding, we introduced our local vibrational mode analysis, complemented by energy and electron density analyses and electrostatic potential studies at the density functional theory (DFT) and coupled-cluster single, double, and perturbative triple excitations (CCSD(T)) levels of theory. We could for the first time quantify the various attractive contacts and their contribution to the dimer stability and clarify the special role of halogen bonding in these systems. The largest contribution to the stability of the dimers is either due to halogen bonding or nonspecific interactions. Hydrogen bonding plays only a secondary role. The metal can only act as halogen acceptor when the monomer adopts a (quasi-)planar geometry. The best strategy to accomplish this is to substitute the halo-pyridine ring with a halo-diazole ring, which considerably strengthens halogen bonding. Our findings based on the local mode analysis provide a solid platform for fine-tuning of existing and for design of new metal-halogen-bonded materials.

摘要

将金属中心引入卤素键合材料中可以有效地微调卤素键的强度,并引入新的电子功能。金属原子可以扮演两种可能的角色:作为卤素受体或使卤素供体和受体基团极化。我们研究了23种金属 - 卤素二聚体trans - M(Y)(NCHX - 3)的这两种情况,其中M = Pd(II)、Pt(II);Y = F、Cl、Br;X = Cl、Br、I;且NCHX - 3 = 3 - 卤代吡啶。作为定量评估金属 - 卤素键合的新工具,我们引入了局域振动模式分析,并辅以在密度泛函理论(DFT)和耦合簇单、双及微扰三重激发(CCSD(T))理论水平上的能量、电子密度分析以及静电势研究。我们首次能够量化各种吸引性相互作用及其对二聚体稳定性的贡献,并阐明卤素键合在这些体系中的特殊作用。对二聚体稳定性的最大贡献要么归因于卤素键合,要么归因于非特异性相互作用。氢键仅起次要作用。当单体采用(准)平面几何构型时,金属才能作为卤素受体。实现这一点的最佳策略是用卤代二唑环取代卤代吡啶环,这会显著增强卤素键合。我们基于局域模式分析的研究结果为现有金属 - 卤素键合材料的微调以及新型材料的设计提供了坚实的平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0f2c/6982077/b795061b372d/materials-13-00055-g001.jpg

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