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从第一性原理分子动力学和模拟 X 射线吸收光谱研究二氯络合物溶液中镁离子的溶剂化结构。

The solvation structure of Mg ions in dichloro complex solutions from first-principles molecular dynamics and simulated X-ray absorption spectra.

机构信息

Joint Center for Energy Storage Research (JCESR), The Molecular Foundry, Lawrence Berkeley National Laboratory , Berkeley, California 94720, United States.

出版信息

J Am Chem Soc. 2014 Oct 15;136(41):14456-64. doi: 10.1021/ja505967u. Epub 2014 Oct 1.

DOI:10.1021/ja505967u
PMID:25243732
Abstract

The knowledge of Mg solvation structure in the electrolyte is requisite to understand the transport behavior of Mg ions and their dissolution/deposition mechanism at electrolyte/electrode interfaces. In the first established rechargeable Mg-ion battery system [D. Aurbach et al. Nature 2000, 407, 724], the electrolyte is of the dichloro complex (DCC) solution family, Mg(AlCl2BuEt)2/THF, resulting from the reaction of Bu2Mg and EtAlCl2 with a molar ratio of 1:2. There is disagreement in the literature regarding the exact solvation structure of Mg ions in such solutions, i.e., whether Mg(2+) is tetra- or hexacoordinated by a combination of Cl(-) and THF. In this work, theoretical insight into the solvation complexes present is provided based on first-principles molecular dynamics simulations (FPMD). Both Mg monomer and dimer structures are considered in both neutral and positively charged states. We found that, at room temperature, the Mg(2+) ion tends to be tetracoordinated in the THF solution phase instead of hexacoordinated, which is the predominant solid-phase coordination. Simulating the X-ray absorption spectra (XAS) at the Mg K-edge by sampling our FPMD trajectories, our predicted solvation structure can be readily compared with experimental measurements. It is found that when changing from tetra- to hexacoordination, the onset of X-ray absorption should exhibit at least a 1 eV blue shift. We propose that this energy shift can be used to monitor changes in the Mg solvation sphere as it migrates through the electrolyte to electrolyte/electrode interfaces and to elucidate the mechanism of Mg dissolution/deposition.

摘要

了解镁离子在电解液中的溶剂化结构对于理解镁离子的输运行为及其在电解液/电极界面处的溶解/沉积机制至关重要。在第一个建立的可再充电镁离子电池系统[D. Aurbach 等人,《自然》,2000 年,407,724]中,电解液为二氯络合物(DCC)溶液家族,Mg(AlCl2BuEt)2/THF,由 Bu2Mg 和 EtAlCl2 以 1:2 的摩尔比反应得到。关于此类溶液中镁离子的确切溶剂化结构,即在中性和正电荷状态下,Mg(2+)是由 Cl(-)和 THF 组合四配位还是六配位,文献中存在分歧。在这项工作中,基于第一性原理分子动力学模拟(FPMD)提供了对存在的溶剂化配合物的理论见解。在中性和正电荷状态下都考虑了 Mg 单体和二聚体结构。我们发现,在室温下,Mg(2+)离子在 THF 溶液相中倾向于四配位,而不是六配位,这是主要的固相配位。通过对我们的 FPMD 轨迹进行采样来模拟 X 射线吸收光谱(XAS)在 Mg K 边缘,我们预测的溶剂化结构可以很容易地与实验测量结果进行比较。结果表明,当从四配位变为六配位时,X 射线吸收的起始位置应该至少蓝移 1 eV。我们提出,这种能量位移可用于监测 Mg 溶剂化球在电解液中向电解液/电极界面迁移时的变化,并阐明 Mg 溶解/沉积的机制。

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