Jalilehvand F, Spångberg D, Lindqvist-Reis P, Hermansson K, Persson I, Sandström M
Department of Chemistry, Royal Institute of Technology, S-100 44 Stockholm, Sweden.
J Am Chem Soc. 2001 Jan 24;123(3):431-41. doi: 10.1021/ja001533a.
The structure of the hydrated calcium(II) ion in aqueous solution has been studied by means of extended X-ray absorption fine structure spectroscopy (EXAFS), large-angle X-ray scattering (LAXS), and molecular dynamics (MD) methods. The EXAFS data displayed a broad and asymmetric distribution of the Ca-O bond distances with the centroid at 2.46(2) A. LAXS studies on four aqueous calcium halide solutions (1.5-2 mol dm(-)(3)) gave a mean Ca-O bond distance of 2.46(1) A. This is consistent with a hydration number of 8 determined from correlations between mean distances and coordination numbers from crystal structures. The LAXS studies showed a second coordination sphere with a mean Ca.O(II) distance of 4.58(5) A, and for the hydrated halide ions the distances Cl.O 3.25(1) A, Br.O 3.36(1) A, and I.O 3.61(1) A were obtained. Molecular dynamics simulations of CaCl(2)(aq) were performed using three different Ca(2+)-OH(2) pair potentials. The potential from the GROMOS program gave results in agreement with experiments, i.e., a coordination number of 8 and an average Ca-O distance of 2.46 A, and was used for further comparisons. Theoretical EXAFS oscillations were computed for individual MD snapshots and showed very large variations, though the simulated average spectrum from 2000 snapshots gave satisfactory agreement with the experimental EXAFS spectra. The effect of thermal motions of the coordinated atoms is inherent in the MD simulation method. Thermal disorder parameters evaluated from simulated spatial atom distribution functions of the oxygen atoms coordinated to the calcium ion were in close agreement with those from the current LAXS and EXAFS analyses. The combined results are consistent with a root-mean-square displacement from the mean Ca-O distance of 0.09(2) A in aqueous solution at 300 K.
通过扩展X射线吸收精细结构光谱(EXAFS)、大角度X射线散射(LAXS)和分子动力学(MD)方法研究了水溶液中水合钙离子(II)的结构。EXAFS数据显示Ca - O键距呈宽且不对称分布,质心位于2.46(2) Å。对四种卤化钙水溶液(1.5 - 2 mol dm⁻³)的LAXS研究得出平均Ca - O键距为2.46(1) Å。这与根据晶体结构中平均距离和配位数的相关性确定的水合数8一致。LAXS研究表明存在第二配位层,平均Ca - O(II)距离为4.58(5) Å,对于水合卤离子,得到的距离为Cl - O 3.25(1) Å、Br - O 3.36(1) Å和I - O 3.61(1) Å。使用三种不同的Ca²⁺ - OH₂对势进行了CaCl₂(aq)的分子动力学模拟。来自GROMOS程序的势给出的结果与实验一致,即配位数为8且平均Ca - O距离为2.46 Å,并用于进一步比较。针对单个MD快照计算了理论EXAFS振荡,显示出非常大的变化,尽管从2000个快照得到的模拟平均光谱与实验EXAFS光谱有令人满意的一致性。配位原子热运动的影响是MD模拟方法所固有的。根据与钙离子配位的氧原子的模拟空间原子分布函数评估的热无序参数与当前LAXS和EXAFS分析的结果非常一致。综合结果与300 K水溶液中相对于平均Ca - O距离的均方根位移为0.09(2) Å一致。