溶剂化电子
化学
从头算
离子
电子顺磁共振
水团
回转半径
拉曼光谱
电子
超精细结构
四面体
星团(航天器)
计算化学
分子
原子物理学
分子物理学
水溶液
结晶学
物理化学
物理
核磁共振
氢键
量子力学
聚合物
有机化学
放射分析
计算机科学
程序设计语言
作者
Anil Kumar,Jonathan A. Walker,David M. Bartels,Michael D. Sevilla
标识
DOI:10.1021/acs.jpca.5b04721
摘要
Since its discovery over 50 years ago, the "structure" and properties of the hydrated electron have been a subject for wonderment and also fierce debate. In the present work we seriously explore a minimal model for the aqueous electron, consisting of a small water anion cluster embedded in a polarized continuum, using several levels of ab initio calculation and basis set. The minimum energy "zero Kelvin" structure found for any 4-water (or larger) anion cluster, at any post-Hartree–Fock theory level, is very similar to a recently reported embedded-DFT-in-classical-water-MD simulation (Uhlig, Marsalek, and Jungwirth, J. Phys. Chem. Lett. 2012, 3, 3071−3075), with four OH bonds oriented toward the maximum charge density in a small central "void". The minimum calculation with just four water molecules does a remarkably good job of reproducing the resonance Raman properties, the radius of gyration derived from the optical spectrum, the vertical detachment energy, and the hydration free energy. For the first time we also successfully calculate the EPR g-factor and (low temperature ice) hyperfine couplings. The simple tetrahedral anion cluster model conforms very well to experiment, suggesting it does in fact represent the dominant structural motif of the hydrated electron.
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