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通过局部分子参数预测有机化合物的固有氢键受体强度

Prediction of the intrinsic hydrogen bond acceptor strength of organic compounds by local molecular parameters.

作者信息

Schwöbel Johannes, Ebert Ralf-Uwe, Kühne Ralph, Schüürmann Gerrit

机构信息

UFZ Department of Ecological Chemistry, Helmholtz Centre for Environmental Research, Permoserstrasse 15, 04318 Leipzig, Germany.

出版信息

J Chem Inf Model. 2009 Apr;49(4):956-62. doi: 10.1021/ci900040z.

Abstract

A quantum chemical model has been developed for predicting the hydrogen bond (HB) acceptor strength of monofunctional organic compounds from electronic ground-state properties of the single molecules. Local molecular parameters are used to quantify electrostatic, polarizability, and charge transfer components to hydrogen bonding, employing the ab initio and density functional theory levels HF/6-31G** and B3LYP/6-31G**. The model can handle lone pairs of intermediate and strong HB acceptor heteroatoms (N, O, S) as well as of weak HB acceptor halogens (F, Cl, Br) and includes also olefinic, alkyne, and aromatic pi-bonds as weak HB acceptor sites. The model calibration with 403 compounds and experimental values for the Abraham HB acceptor strength B yielded squared correlation coefficients r(2) around 0.95, outperforming existing fragment-based schemes. Model validation was performed applying a leave-50%-out procedure, yielding predictive squared correlation coefficients q(2) of around 0.95 for the subsets that both cover the whole chemical domain as well as (almost) the whole target value range of the data set.

摘要

已经开发了一种量子化学模型,用于根据单分子的电子基态性质预测单官能有机化合物的氢键(HB)受体强度。使用局部分子参数来量化氢键的静电、极化率和电荷转移分量,采用从头算和密度泛函理论水平HF/6-31G和B3LYP/6-31G。该模型可以处理中度和强HB受体杂原子(N、O、S)以及弱HB受体卤素(F、Cl、Br)的孤对,并且还包括烯烃、炔烃和芳香π键作为弱HB受体位点。用403种化合物和亚伯拉罕HB受体强度B的实验值进行模型校准,得到的平方相关系数r(2)约为0.95,优于现有的基于片段的方案。使用留50%法进行模型验证,对于既覆盖整个化学领域又(几乎)覆盖数据集整个目标值范围的子集,预测平方相关系数q(2)约为0.95。

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