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从头算研究 EMIM-BF4 晶体与 Li(100)表面的相互作用,作为锂离子电池中离子液体/Li 界面的模型。

Ab initio study of EMIM-BF4 crystal interaction with a Li (100) surface as a model for ionic liquid/Li interfaces in Li-ion batteries.

机构信息

Research Institute for Ubiquitous Energy Devices, National Institute of Advanced Industrial Science and Technology, 1-8-31 Midorigaoka, Ikeda, Osaka 563-8577, Japan.

出版信息

J Chem Phys. 2009 Dec 28;131(24):244705. doi: 10.1063/1.3273087.

Abstract

We examined the atomic and electronic structures of an interface between a 1-ethyl-3-methyl imidazolium tetrafluoroborate (EMIM-BF(4)) ionic-liquid crystal and a Li(100) surface by periodic density-functional calculations, as a model for a room-temperature ionic-liquid (RTIL) electrolyte/Li interface at a Li-ion battery electrode. Results are compared with our previous theoretical study of the EMIM-BF(4) molecular adsorption on Li surfaces [H. Valencia et al., Phys. Rev. B 78, 205402 (2008)]. For the EMIM-BF(4) crystal structure, the present projector augmented wave scheme with the generalized gradient approximation can reproduce rather correct intramolecular structures as well as satisfactory short-ranged intermolecular distances, while long-range intermolecular distances are overestimated due to the lack of correct description of long-range dispersive interactions. We constructed a coherent crystal/crystal interface model where four EMIM-BF(4) pairs are stacked on a p(4x3) Li (100) surface cell so as to simulate RTIL-layer deposition on a Li surface. We observed significant attraction of surface Li ions toward contacting BF(4)(-) anions, counterbalanced by electron transfer toward EMIM(+) cations near the interface, revealing the tendency of easy ionization of Li and Li(x)-BF(4) cluster formation, coupled with the reduction of EMIM(+). These features are similar to those observed in the EMIM-BF(4) molecular adsorption, while these have been proved to occur in the crystal-layer adsorption. We examined the adhesive energy, wetability, and detailed electronic structure at the crystal/crystal interface.

摘要

我们通过周期性密度泛函计算研究了 1-乙基-3-甲基咪唑四氟硼酸盐(EMIM-BF4)离子液体晶体与 Li(100) 表面之间界面的原子和电子结构,作为锂离子电池电极中室温离子液体(RTIL)电解质/Li 界面的模型。结果与我们之前关于 EMIM-BF4 分子在 Li 表面吸附的理论研究进行了比较[H. Valencia 等人,Phys. Rev. B 78, 205402 (2008)]。对于 EMIM-BF4 晶体结构,本研究采用投影扩充波方案和广义梯度近似可以相当准确地重现分子内结构以及令人满意的短程分子间距离,尽管由于缺乏对长程色散相互作用的正确描述,长程分子间距离被高估。我们构建了一个相干晶体/晶体界面模型,其中四个 EMIM-BF4 对堆叠在 p(4x3)Li(100)表面单元上,以模拟 RTIL 层在 Li 表面上的沉积。我们观察到表面 Li 离子明显吸引接触的 BF4(-)阴离子,被界面附近向 EMIM(+)阳离子的电子转移所平衡,这揭示了 Li 容易电离和 Li(x)-BF4 团簇形成的趋势,同时伴随着 EMIM(+)的还原。这些特征与在 EMIM-BF4 分子吸附中观察到的特征相似,而这些特征已被证明存在于晶体层吸附中。我们研究了晶体/晶体界面的粘附能、润湿性和详细的电子结构。

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