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模型血红素最低能量五重态和三重态的密度泛函理论计算:泛函、基组和零点能量校正的作用

Density functional theory calculations of the lowest energy quintet and triplet states of model hemes: role of functional, basis set, and zero-point energy corrections.

作者信息

Khvostichenko Daria, Choi Andrew, Boulatov Roman

机构信息

Department of Chemistry, University of Illinois, Urbana, Illinois 61801, USA.

出版信息

J Phys Chem A. 2008 Apr 24;112(16):3700-11. doi: 10.1021/jp076979t. Epub 2008 Mar 19.

Abstract

We investigated the effect of several computational variables, including the choice of the basis set, application of symmetry constraints, and zero-point energy (ZPE) corrections, on the structural parameters and predicted ground electronic state of model 5-coordinate hemes (iron(II) porphines axially coordinated by a single imidazole or 2-methylimidazole). We studied the performance of B3LYP and B3PW91 with eight Pople-style basis sets (up to 6-311+G*) and B97-1, OLYP, and TPSS functionals with 6-31G and 6-31G* basis sets. Only hybrid functionals B3LYP, B3PW91, and B97-1 reproduced the quintet ground state of the model hemes. With a given functional, the choice of the basis set caused up to 2.7 kcal/mol variation of the quintet-triplet electronic energy gap (DeltaEel), in several cases, resulting in the inversion of the sign of DeltaEel. Single-point energy calculations with triple-zeta basis sets of the Pople (up to 6-311G++(2d,2p)), Ahlrichs (TZVP and TZVPP), and Dunning (cc-pVTZ) families showed the same trend. The zero-point energy of the quintet state was approximately 1 kcal/mol lower than that of the triplet, and accounting for ZPE corrections was crucial for establishing the ground state if the electronic energy of the triplet state was approximately 1 kcal/mol less than that of the quintet. Within a given model chemistry, effects of symmetry constraints and of a "tense" structure of the iron porphine fragment coordinated to 2-methylimidazole on DeltaEel were limited to 0.3 kcal/mol. For both model hemes the best agreement with crystallographic structural data was achieved with small 6-31G and 6-31G* basis sets. Deviation of the computed frequency of the Fe-Im stretching mode from the experimental value with the basis set decreased in the order: nonaugmented basis sets, basis sets with polarization functions, and basis sets with polarization and diffuse functions. Contraction of Pople-style basis sets (double-zeta or triple-zeta) affected the results insignificantly for iron(II) porphyrin coordinated with imidazole. Poor performance of a "locally dense" basis set with a large number of basis functions on the Fe center was observed in calculation of quintet-triplet gaps. Our results lead to a series of suggestions for density functional theory calculations of quintet-triplet energy gaps in ferrohemes with a single axial imidazole; these suggestions are potentially applicable for other transition-metal complexes.

摘要

我们研究了几个计算变量,包括基组的选择、对称性约束的应用以及零点能(ZPE)校正,对模型五配位血红素(由单个咪唑或2-甲基咪唑轴向配位的铁(II)卟啉)的结构参数和预测基态电子态的影响。我们研究了B3LYP和B3PW91与八个普适型基组(最高至6 - 311 + G*)以及B97 - 1、OLYP和TPSS泛函与6 - 31G和6 - 31G基组的性能。只有杂化泛函B3LYP、B3PW91和B97 - 1重现了模型血红素的五重态基态。对于给定的泛函,基组的选择导致五重态 - 三重态电子能隙(ΔEel)变化高达2.7 kcal/mol,在某些情况下,导致ΔEel符号反转。使用普适型三重ζ基组(最高至6 - 311G++(2d,2p))、阿尔里奇斯基组(TZVP和TZVPP)以及邓宁基组(cc - pVTZ)进行的单点能量计算显示出相同趋势。五重态的零点能比三重态低约1 kcal/mol,如果三重态的电子能量比五重态低约1 kcal/mol,考虑ZPE校正对于确定基态至关重要。在给定的模型化学中,对称性约束以及与2 - 甲基咪唑配位的铁卟啉片段的“张力”结构对ΔEel的影响限制在0.3 kcal/mol以内。对于两种模型血红素,使用小的6 - 31G和6 - 31G基组与晶体学结构数据的吻合度最佳。随着基组的变化,计算得到的Fe - Im伸缩模式频率与实验值的偏差按以下顺序减小:非增强基组、带有极化函数的基组以及带有极化和弥散函数的基组。对于与咪唑配位的铁(II)卟啉,普适型基组(双ζ或三ζ)的收缩对结果影响不显著。在计算五重态 - 三重态能隙时,观察到在Fe中心具有大量基函数的“局部密集”基组性能较差。我们的结果为具有单个轴向咪唑的亚铁血红素的五重态 - 三重态能隙的密度泛函理论计算提出了一系列建议;这些建议可能适用于其他过渡金属配合物。

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