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用于π-堆积相互作用的杂化密度泛函理论:在苯、吡啶和DNA碱基中的应用。

Hybrid density functional theory for pi-stacking interactions: application to benzenes, pyridines, and DNA bases.

作者信息

Waller Mark P, Robertazzi Arturo, Platts James A, Hibbs David E, Williams Peter A

机构信息

Faculty of Pharmacy, University of Sydney, NSW 2006, Australia.

出版信息

J Comput Chem. 2006 Mar;27(4):491-504. doi: 10.1002/jcc.20363.

DOI:10.1002/jcc.20363
PMID:16444702
Abstract

The suitability of a hybrid density functional to qualitatively reproduce geometric and energetic details of parallel pi-stacked aromatic complexes is presented. The hybrid functional includes an ad hoc mixture of half the exact (HF) exchange with half of the uniform electron gas exchange, plus Lee, Yang, and Parr's expression for correlation energy. This functional, in combination with polarized, diffuse basis sets, gives a binding energy for the parallel-displaced benzene dimer in good agreement with the best available high-level calculations reported in the literature, and qualitatively reproduces the local MP2 potential energy surface of the parallel-displaced benzene dimer. This method was further critically compared to high-level calculations recently reported in the literature for a range of pi-stacked complexes, including monosubstituted benzene-benzene dimers, along with DNA and RNA bases, and generally agrees with MP2 and/or CCSD(T) results to within +/-2 kJ mol(-1). We also show that the resulting BH&H binding energy is closely related to the electron density in the intermolecular region. The net result is that the BH&H functional, presumably due to fortuitous cancellation of errors, provides a pragmatic, computationally efficient quantum mechanical tool for the study of large pi-stacked systems such as DNA.

摘要

本文展示了一种杂化密度泛函在定性再现平行π-堆积芳香族配合物的几何和能量细节方面的适用性。该杂化泛函包括精确(HF)交换的一半与均匀电子气交换的一半的特殊混合,再加上李、杨和帕尔的相关能表达式。这种泛函与极化、弥散基组相结合,得到的平行位移苯二聚体的结合能与文献中报道的最佳可用高级计算结果高度吻合,并定性地再现了平行位移苯二聚体的局部MP2势能面。该方法还与文献中最近报道的一系列π-堆积配合物的高级计算进行了严格比较,包括单取代苯-苯二聚体以及DNA和RNA碱基,总体上与MP2和/或CCSD(T)结果在±2 kJ mol⁻¹范围内一致。我们还表明,由此得到的BH&H结合能与分子间区域的电子密度密切相关。最终结果是,BH&H泛函可能由于误差的偶然抵消,为研究诸如DNA等大型π-堆积系统提供了一种实用、计算高效的量子力学工具。

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