Resonance Character of Hydrogen-bonding Interactions in Water and Other H-bonded Species.

F Weinhold
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引用次数: 53

Abstract

Hydrogen bonding underlies the structure of water and all biochemical processes in aqueous medium. Analysis of modern ab initio wave functions in terms of natural bond orbitals (NBOs) strongly suggests the resonance-type "charge transfer" (CT) character of H-bonding, contrary to the widely held classical-electrostatic viewpoint that underlies current molecular dynamics (MD) modeling technology. Quantum cluster equilibrium (QCE) theory provides an alternative ab initio-based picture of liquid water that predicts proton-ordered two-coordinate H-bonding patterns, dramatically different from the ice-like picture of electrostatics-based MD simulations. Recent X-ray absorption and Raman scattering experiments of Nilsson and co-workers confirm the microstructural two-coordinate picture of liquid water. We show how such cooperative "unsaturated" ring/chain topologies arise naturally from the fundamental resonance-CT nature of B:cdots, three dots, centeredHA hydrogen bonding, which is expressed in NBO language as n(B)-->sigma(AH)(*) intermolecular delocalization from a filled lone pair n(B) of the Lewis base (B:) into the proximal antibond sigma(AH)(*) of the Lewis acid (HA). Stabilizing n(O)-->sigma(OH)(*) orbital delocalization, equivalent to partial mixing of resonance structures H(2)O:cdots, three dots, centeredHOH H(3)O(+) cdots, three dots, centered(-):OH, is thereby seen to be the electronic origin of general enthalpic and entropic propensities that favor relatively small cyclic clusters such as water pentamers W(5c) in the QCE liquid phase. We also discuss the thermodynamically competitive three-coordinate clusters (e.g., icosahedral water buckyballs, W(24)), which appear to play a role in hydrophobic solvation phenomena. We conclude with suggestions for incorporating resonance-CT aspects of H-bonding into empirical MD simulation potentials in a computationally tractable manner.

水和其他氢键物质中氢键相互作用的共振特性。
氢键是水的结构和水介质中所有生化过程的基础。从自然键轨道(NBOs)角度对现代从头算波函数的分析强烈表明,氢键具有共振型“电荷转移”(CT)特征,这与当前分子动力学(MD)建模技术基础上广泛持有的经典静电观点相反。量子团簇平衡(QCE)理论提供了另一种基于从头算的液态水图像,它预测了质子有序的两坐标氢键模式,与基于静电的MD模拟的冰状图像有很大不同。Nilsson及其同事最近进行的x射线吸收和拉曼散射实验证实了液态水的微观结构双坐标图。我们展示了这种合作的“不饱和”环/链拓扑结构是如何从B:cdots,三个点,中心HA氢键的基本共振- ct性质中自然产生的,用NBO语言表示为n(B)- >sigma(AH)(*)分子间离域,从Lewis碱(B:)的填充孤对n(B)到Lewis酸(HA)的近端反键sigma(AH)(*)。稳定的n(O)- >sigma(OH)(*)轨道离域,相当于共振结构H(2)O:cdots,三个点,中心为hoh H(3)O(+) cdots,三个点,中心为(-):OH的部分混合,因此被视为一般焓和熵倾向的电子起源,有利于相对较小的循环簇,如QCE液相中的水五聚体W(5c)。我们还讨论了热力学竞争的三坐标团簇(例如,二十面体水巴基球,W(24)),它们似乎在疏水溶剂化现象中起作用。最后,我们提出了将氢键的共振- ct方面以计算易于处理的方式纳入经验MD模拟势的建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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