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从头算分子动力学模拟揭示了非均相CO₂ - H₂O体系中多余电子的局域化和时间演化动力学。

Ab initio molecular dynamics simulations reveal localization and time evolution dynamics of an excess electron in heterogeneous CO2-H2O systems.

作者信息

Liu Ping, Zhao Jing, Liu Jinxiang, Zhang Meng, Bu Yuxiang

机构信息

School of Chemistry and Chemical Engineering, Shandong University, Jinan, 250100, People's Republic of China.

出版信息

J Chem Phys. 2014 Jan 28;140(4):044318. doi: 10.1063/1.4863343.

Abstract

In view of the important implications of excess electrons (EEs) interacting with CO2-H2O clusters in many fields, using ab initio molecular dynamics simulation technique, we reveal the structures and dynamics of an EE associated with its localization and subsequent time evolution in heterogeneous CO2-H2O mixed media. Our results indicate that although hydration can increase the electron-binding ability of a CO2 molecule, it only plays an assisting role. Instead, it is the bending vibrations that play the major role in localizing the EE. Due to enhanced attraction of CO2, an EE can stably reside in the empty, low-lying π(*) orbital of a CO2 molecule via a localization process arising from its initial binding state. The localization is completed within a few tens of femtoseconds. After EE trapping, the ∠OCO angle of the core CO2 (-) oscillates in the range of 127°∼142°, with an oscillation period of about 48 fs. The corresponding vertical detachment energy of the EE is about 4.0 eV, which indicates extreme stability of such a CO2-bound solvated EE in CO2(H2O)n systems. Interestingly, hydration occurs not only on the O atoms of the core CO2 (-) through formation of O⋯H-O H-bond(s), but also on the C atom, through formation of a C⋯H-O H-bond. In the latter binding mode, the EE cloud exhibits considerable penetration to the solvent water molecules, and its IR characteristic peak is relatively red-shifted compared with the former. Hydration on the C site can increase the EE distribution at the C atom and thus reduce the C⋯H distance in the C⋯H-O H-bonds, and vice versa. The number of water molecules associated with the CO2 (-) anion in the first hydration shell is about 4∼7. No dimer-core (C2O4 (-)) and core-switching were observed in the double CO2 aqueous media. This work provides molecular dynamics insights into the localization and time evolution dynamics of an EE in heterogeneous CO2-H2O media.

摘要

鉴于过量电子(EEs)与CO₂-H₂O团簇在许多领域的相互作用具有重要意义,我们使用从头算分子动力学模拟技术,揭示了在非均相CO₂-H₂O混合介质中与EE的定位及其随后的时间演化相关的结构和动力学。我们的结果表明,尽管水合作用可以提高CO₂分子的电子结合能力,但它只起辅助作用。相反,弯曲振动在EE的定位中起主要作用。由于CO₂吸引力增强,一个EE可以通过其初始结合状态产生的定位过程稳定地驻留在CO₂分子的空的、低能的π(*)轨道中。定位在几十飞秒内完成。EE捕获后,核心CO₂(-)的∠OCO角在127°∼142°范围内振荡,振荡周期约为48飞秒。EE相应的垂直脱附能约为4.0 eV,这表明在CO₂(H₂O)n系统中这种与CO₂结合的溶剂化EE具有极高的稳定性。有趣的是,水合作用不仅通过形成O⋯H-O氢键在核心CO₂(-)的O原子上发生,还通过形成C⋯H-O氢键在C原子上发生。在后一种结合模式中,EE云对溶剂水分子有相当程度的穿透,并且其红外特征峰相对于前一种模式有相对红移。C位点的水合作用可以增加EE在C原子处的分布,从而减小C⋯H-O氢键中的C⋯H距离,反之亦然。在第一个水合壳层中与CO₂(-)阴离子相关的水分子数量约为4∼7。在双CO₂水介质中未观察到二聚体核心(C₂O₄(-))和核心切换。这项工作为非均相CO₂-H₂O介质中EE的定位和时间演化动力学提供了分子动力学见解。

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