Takenaka Norio, Nagaoka Masataka
Graduate School of Informatics, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, 464-8601, Japan.
ESICB, Kyoto University, Kyodai Katsura, Nishikyo-ku, Kyoto, 615-8520, Japan.
Chem Rec. 2019 Apr;19(4):799-810. doi: 10.1002/tcr.201800137. Epub 2019 Mar 21.
Secondary batteries such as Li-ion battery are expected to be utilized as not only ubiquitous electric power sources such as mobile phones but also large-scale electricity storage devices. Therefore, it is urgent to develop the higher performance secondary batteries. Their lifetime and stability are found to be strongly dependent on the nature of passivation film called solid electrolyte interphase (SEI) film formed on the anode surface in the initial charge-discharge cycle. However, since it is difficult to directly observe the film formation processes in experiment, its microscopic mechanism is still not found. On the other hand, although the theoretical methods are useful complement to the experiment, some new methodologies are necessary to understand the long-term processes of SEI film, which is produced as a result of that a lot of chemical reactions proceed simultaneously. Under the circumstances, we have developed Red Moon method that can simulate such complex chemical reaction systems, and were able to analyze for the first time the SEI film formation processes on the anode surface at the atomistic level. Then, we clarified theoretically the microscopic mechanism of the additive effect which is essential to improve the Na-ion battery performance so as to enhance the SEI film formation. This new microscopic insight must provide an important guiding principle for use in designing the most suitable electrolytes for developing high-performance secondary batteries.
诸如锂离子电池之类的二次电池不仅有望用作手机等无处不在的电源,还能用作大规模蓄电装置。因此,开发高性能二次电池迫在眉睫。人们发现,它们的寿命和稳定性在很大程度上取决于在初次充放电循环中阳极表面形成的一种名为固体电解质界面(SEI)膜的钝化膜的性质。然而,由于在实验中难以直接观察膜的形成过程,其微观机制仍未被发现。另一方面,尽管理论方法是对实验的有益补充,但需要一些新方法来理解SEI膜的长期形成过程,这是由于许多化学反应同时进行所致。在这种情况下,我们开发了能够模拟此类复杂化学反应系统的红月方法,并首次在原子水平上分析了阳极表面的SEI膜形成过程。然后,我们从理论上阐明了添加剂效应的微观机制,这种效应对于提高钠离子电池性能从而增强SEI膜形成至关重要。这一新的微观见解必定会为设计用于开发高性能二次电池的最合适电解质提供重要的指导原则。