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用含时密度泛函理论计算旋光率:OR45 基准。

Optical rotation calculated with time-dependent density functional theory: the OR45 benchmark.

机构信息

Department of Chemistry, State University of New York at Buffalo, Buffalo, New York 14260-3000, USA.

出版信息

J Phys Chem A. 2011 Oct 13;115(40):10930-49. doi: 10.1021/jp2055409. Epub 2011 Sep 21.

Abstract

Time-dependent density functional theory (TDDFT) computations are performed for 42 organic molecules and three transition metal complexes, with experimental molar optical rotations ranging from 2 to 2 × 10(4) deg cm(2) dmol(-1). The performances of the global hybrid functionals B3LYP, PBE0, and BHLYP, and of the range-separated functionals CAM-B3LYP and LC-PBE0 (the latter being fully long-range corrected), are investigated. The performance of different basis sets is studied. When compared to liquid-phase experimental data, the range-separated functionals do, on average, not perform better than B3LYP and PBE0. Median relative deviations between calculations and experiment range from 25 to 29%. A basis set recently proposed for optical rotation calculations (LPol-ds) on average does not give improved results compared to aug-cc-pVDZ in TDDFT calculations with B3LYP. Individual cases are discussed in some detail, among them norbornenone for which the LC-PBE0 functional produced an optical rotation that is close to available data from coupled-cluster calculations, but significantly smaller in magnitude than the liquid-phase experimental value. Range-separated functionals and BHLYP perform well for helicenes and helicene derivatives. Metal complexes pose a challenge to first-principles calculations of optical rotation.

摘要

对 42 种有机分子和 3 种过渡金属配合物进行了时变密度泛函理论(TDDFT)计算,实验摩尔旋光率范围为 2 至 2×10(4) deg cm(2) dmol(-1)。研究了全局杂交泛函 B3LYP、PBE0 和 BHLYP 以及范围分离泛函 CAM-B3LYP 和 LC-PBE0(后者完全为长程校正)的性能。研究了不同基组的性能。与液相实验数据相比,范围分离泛函的性能平均而言并不优于 B3LYP 和 PBE0。计算与实验之间的中位数相对偏差范围为 25%至 29%。最近提出的用于旋光计算的基组(LPol-ds)在 B3LYP 的 TDDFT 计算中与 aug-cc-pVDZ 相比平均没有得到改进的结果。详细讨论了个别情况,其中包括降冰片烯酮,LC-PBE0 泛函产生的旋光率接近耦合簇计算的可用数据,但远小于液相实验值。范围分离泛函和 BHLYP 对螺旋烯和螺旋烯衍生物的性能表现良好。金属配合物对旋光的第一性原理计算构成了挑战。

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