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首页> 外文期刊>International Journal of Quantum Chemistry >The effect of the functional, basis set, and solvent in the simulation of the geometry and spectroscopic properties of V ~(IV)O ~(2+) complexes. chemical and biological applications
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The effect of the functional, basis set, and solvent in the simulation of the geometry and spectroscopic properties of V ~(IV)O ~(2+) complexes. chemical and biological applications

机译:官能团,基集和溶剂在模拟V〜(IV)O〜(2+)配合物的几何和光谱性质中的作用。化学和生物应用

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摘要

The geometry of 32 V ~(IV)O ~(2+) complexes with different donor set, electric charge, geometry, arrangement of the ligands with respect to the V=O bond and type of ligand was calculated by density functional theory methods. 32 V=O, 45 V-O, 16 V-OH, 40 V-N, 24 V-S, and 14 V-Cl bonds were examined. The performance of several functionals (B3LYP, B3P86, B3PW91, HCTH, TPSS, PBE0, and MPW1PW91), keeping constant the Pople triple-zeta basis sets 6-311g, was tested. The order of accuracy of the functional in the prediction of the bond distances, expressed in terms of mean of the deviation Δd (Δd = d calcd - d exptl) and absolute deviation |Δd| (|Δd| = |d calcd - d exptl|) from the experimental values and of the corresponding standard deviations (SD(Δd) and SD(|Δd|)), is: B3P86 ~ PBE0 ~ MPW1PW91 < B3PW91 ? TPSS < B3LYP ? HCTH. In the gas phase the prediction of V=O, V-O, V-N bond lengths is rather good, but that of V-OH, V-S and V-Cl distances is by far worse. An improvement in the optimization of V-S and V-Cl lengths is reached by adding polarization and diffuse functions on the sulfur and chlorine atoms. Finally, a general improvement in the prediction of all the calculated bond lengths and angles is obtained by simulating the structures in the solvent where they are isolated within the framework of the polarizable continuum model. The last choice allows also to improve the prediction of structural (the deviation of a penta-coordinate geometry toward the trigonal bipyramid) and spectroscopic parameters (51V and 14N hyperfine coupling constants and 14N nuclear quadrupolar coupling constant). In most of the cases, the structures optimized in solution closely approach the experimental ones and this can be of great help in the simulations of naturally occurring vanadium compounds and metal site of V-proteins, like amavadin and the reduced form of vanadium bromoperoxidase (VBrPO).
机译:通过密度泛函理论方法计算了具有不同供体集的32 V〜(IV)O〜(2+)配合物的几何形状,电荷,几何形状,配体相对于V = O键的排列方式和配体类型。检查了32 V = O,45 V-O,16 V-OH,40 V-N,24 V-S和14 V-Cl键。测试了几种功能(B3LYP,B3P86,B3PW91,HCTH,TPSS,PBE0和MPW1PW91)的性能,这些参数保持Pople三元组基础集6-311g不变。预测键距的泛函的精度等级,以偏差Δd(Δd= d calcd-d exptl)和绝对偏差|Δd|的平均值表示由实验值和相应的标准偏差(SD(Δd)和SD(|Δd|))得出的(|Δd| = | d calcd-d exptl |)为:B3P86〜PBE0〜MPW1PW91

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