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第一性原理预测π亲核试剂的亲核性参数:对迈尔方程的机制起源的启示。

First-principles prediction of nucleophilicity parameters for pi nucleophiles: implications for mechanistic origin of Mayr's equation.

机构信息

Department of Chemistry, University of Science and Technology of China, Hefei 230026, China.

出版信息

Chemistry. 2010 Feb 22;16(8):2586-98. doi: 10.1002/chem.200902484.

Abstract

Quantitative nucleophilicity scales are fundamental to organic chemistry and are usually constructed on the basis of Mayr's equation [log k=s(N+E)] by using benzhydrylium ions as reference electrophiles. Here an ab initio protocol was developed for the first time to predict the nucleophilicity parameters N of various pi nucleophiles in CH(2)Cl(2) through transition-state calculations. The optimized theoretical model (BH&HLYP/6-311++G(3df,2p)//B3LYP/6-311+G(d,p)/PCM/UAHF) could predict the N values of structurally unrelated pi nucleophiles within a precision of ca. 1.14 units and therefore may find applications for the prediction of nucleophilicity of compounds that are not readily amenable to experimental characterization. The success in predicting N parameters from first principles also allowed us to analyze in depth the electrostatic, steric, and solvation energies involved in electrophile-nucleophile reactions. We found that solvation does not play an important role in the validity of Mayr's equation. On the other hand, the correlations of the E, N, and log k values with the energies of the frontier molecular orbitals indicated that electrostatic/charge-transfer interactions play vital roles in Mayr's equation. Surprising correlations observed between the electrophile-nucleophile C-C distances in the transition state, the activation energy barriers, and the E and N parameters indicate the importance of steric interactions in Mayr's equation. A method is then proposed to separate the attraction and repulsion energies in the nucleophile-electrophile interaction. It was found that the attraction energy correlated with N+E, whereas the repulsion energy correlated to the s parameter.

摘要

定量亲核性标度是有机化学的基础,通常基于 Mayr 方程 [log k=s(N+E)],并使用苯甲鎓离子作为参考亲电试剂来构建。在这里,首次开发了一种从头算协议,通过过渡态计算来预测各种π亲核试剂在 CH(2)Cl(2)中的亲核性参数 N。优化后的理论模型 (BH&HLYP/6-311++G(3df,2p)//B3LYP/6-311+G(d,p)/PCM/UAHF) 可以在约 1.14 个单位的精度内预测结构上不相关的π亲核试剂的 N 值,因此可能适用于预测不易进行实验表征的化合物的亲核性。从第一性原理预测 N 参数的成功也使我们能够深入分析亲电-亲核反应中涉及的静电、立体和溶剂化能。我们发现,溶剂化在 Mayr 方程的有效性中并不起重要作用。另一方面,E、N 和 log k 值与前沿分子轨道能量的相关性表明,静电/电荷转移相互作用在 Mayr 方程中起着至关重要的作用。在过渡态中观察到的亲电体-亲核体 C-C 距离、活化能垒以及 E 和 N 参数之间令人惊讶的相关性表明,立体相互作用在 Mayr 方程中很重要。然后提出了一种分离亲核体-亲电体相互作用中吸引能和排斥能的方法。结果发现,吸引能与 N+E 相关,而排斥能与 s 参数相关。

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