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Charge Transfer Models of Zinc and Magnesium in Water

机译:水中锌和镁的电荷转移模型

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Quantum mechanical studies point to the importance of polarization and charge transfer (CT) in zinc binding. A new CT force field is used to study these effects in ion-water dimers and in aqueous solution. Quantum mechanics calculations are carried out to determine amounts of CT. Models for zinc and magnesium are parametrized to reproduce solvation structure, hydration free energy, and CT properties. The new models are subjected to energy decomposition, in which the effects of polarization and CT are investigated. The importance of these multibody interactions in the liquid is also considered. We find that, for divalent cations, polarization and charge transfer both strongly affect binding to water. Though polarization increases the internal (self) energy of water and ions, this is more than compensated for by a stronger ion-water interaction energy. The direction of the charge transfer from the water to the cation weakens the ion-water interaction; this increase in energy is counteracted by a decrease in the system energy due to electron delocalization.
机译:量子力学研究指出极化和电荷转移(CT)在锌结合中的重要性。一个新的CT力场用于研究离子水二聚体和水溶液中的这些作用。进行量子力学计算以确定CT量。参数化锌和镁的模型以重现溶剂化结构,水合自由能和CT特性。对新模型进行能量分解,其中研究了极化和CT的影响。还考虑了液体中这些多体相互作用的重要性。我们发现,对于二价阳离子,极化和电荷转移都强烈影响与水的结合。尽管极化增加了水和离子的内在(自身)能,但更多的是离子-水相互作用能更强地弥补了这一不足。电荷从水转移到阳离子的方向减弱了离子与水的相互作用;由于电子离域,系统能量的减少抵消了这种能量的增加。

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