Quantitative assessment of the nature and strength of Au‒dithiolate bond in gold(III) bis(1,2-dithiolate) homoleptic complexes

IF 1.6 4区 化学 Q3 CHEMISTRY, INORGANIC & NUCLEAR Transition Metal Chemistry Pub Date : 2024-03-20 DOI:10.1007/s11243-024-00579-6
Hanieh Mehri, Yasin Gholiee
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Abstract

Quantum chemical calculations at the BP86/def2-TZVP and M06/def2-TZVP levels of theory have been carried out to investigate the nature and strength of the Au-dithiolate bond in gold(III) bis(1,2-dithiolate) homoleptic complexes [AuL2] where L represents various ligands: ethylene-1,2-dithiolate (edt2−), 1,2-bis(methyl)ethylenedithiolate (dmedt2−), 1,2-maleonitrile-1,2-dithiolate (mnt2−), benzene-1,2- dithiolate (bdt2−), 4,5-dimethylbenzene-1,2-dithiolate (dmbdt2−), and 4,5-dicyanobenzene-1,2-dithiolate (dcbdt2−). The study involved calculating the interaction energies between the fragments as well as assessing the deformation energies of both the Au3+ ion and the dithiolate ions. Furthermore, the total interaction energy and the stabilization energy of the complexes were determined and compared. The investigation also included conducting an energy decomposition analysis (EDA) to examine the characteristics of the bonds between Au(III) and bis(dithiolate) in these complexes. The results demonstrated that the complexes containing dithiolates with ‒CN substitutions ([Au(mnt)2] and [Au(dcbdt)2]) have smaller values of stabilization and interaction energies compared to other ones. The analysis of Au − (bis)dithiolate bonds revealed that the electrostatic interactions make a more substantial contribution to the total attractive interactions compared to the orbital interactions. Indeed, the dominant role in stabilizing the complexes is played by the electrostatic attractions between the Au3+ and the dithiolate ligands. Moreover, both the Au → Lπ and Au → Lσ backdonations in all studied complexes are very weak.

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定量评估双(1,2-二硫醇)金(III)同质络合物中金-二硫醇键的性质和强度
我们在 BP86/def2-TZVP 和 M06/def2-TZVP 理论水平上进行了量子化学计算,以研究金(III)双(1,2-二硫酸盐)均质配合物 [AuL2]- 中 Au-二硫酸盐键的性质和强度,其中 L 代表各种配体:乙烯-1,2-二硫酸盐 (edt2-)、1,2-双(甲基)乙二硫酸盐 (dmedt2-)、1,2-马来腈-1,2-二硫酸盐 (mnt2-)、苯-1,2-二硫酸盐 (bdt2-)、4,5-二甲基苯-1,2-二硫酸盐 (dmbdt2-) 和 4,5-二氰基苯-1,2-二硫酸盐 (dcbdt2-)。研究包括计算碎片之间的相互作用能,以及评估 Au3+ 离子和二硫醇酸盐离子的变形能。此外,还测定并比较了复合物的总相互作用能和稳定能。研究还包括进行能量分解分析(EDA),以检查这些络合物中 Au(III)和双(二硫醇酸盐)之间的键的特性。结果表明,与其他复合物相比,含有-CN取代的二硫醇的复合物([Au(mnt)2]- 和 [Au(dcbdt)2]-)的稳定能和相互作用能值较小。对金-(双)二硫醇键的分析表明,与轨道相互作用相比,静电相互作用对总吸引力相互作用的贡献更大。事实上,Au3+ 和二硫醇配体之间的静电吸引在稳定复合物方面起着主导作用。此外,在所有研究的配合物中,Au → Lπ 和 Au → Lσ 的反向作用都非常微弱。
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来源期刊
Transition Metal Chemistry
Transition Metal Chemistry 化学-无机化学与核化学
CiteScore
3.60
自引率
0.00%
发文量
32
审稿时长
1.3 months
期刊介绍: Transition Metal Chemistry is an international journal designed to deal with all aspects of the subject embodied in the title: the preparation of transition metal-based molecular compounds of all kinds (including complexes of the Group 12 elements), their structural, physical, kinetic, catalytic and biological properties, their use in chemical synthesis as well as their application in the widest context, their role in naturally occurring systems etc. Manuscripts submitted to the journal should be of broad appeal to the readership and for this reason, papers which are confined to more specialised studies such as the measurement of solution phase equilibria or thermal decomposition studies, or papers which include extensive material on f-block elements, or papers dealing with non-molecular materials, will not normally be considered for publication. Work describing new ligands or coordination geometries must provide sufficient evidence for the confident assignment of structural formulae; this will usually take the form of one or more X-ray crystal structures.
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