Tsukasaki Hirofumi, Mori Yota, Otoyama Misae, Yubuchi So, Asano Takamasa, Tanaka Yoshinori, Ohno Takahisa, Mori Shigeo, Hayashi Akitoshi, Tatsumisago Masahiro
Department of Materials Science, Graduate School of Engineering, Osaka Prefecture University, 1-1, Gakuen-cho, Naka-ku, Sakai, Osaka, 599-8531, Japan.
Department of Applied Chemistry, Graduate School of Engineering, Osaka Prefecture University, 1-1, Gakuen-cho, Naka-ku, Sakai, Osaka, 599-8531, Japan.
Sci Rep. 2018 Apr 18;8(1):6214. doi: 10.1038/s41598-018-24524-7.
Sulfide-based all-solid-state lithium batteries are a next-generation power source composed of the inorganic solid electrolytes which are incombustible and have high ionic conductivity. Positive electrode composites comprising LiNiMnCoO (NMC) and 75LiS·25PS (LPS) glass electrolytes exhibit excellent charge-discharge cycle performance and are promising candidates for realizing all-solid-state batteries. The thermal stabilities of NMC-LPS composites have been investigated by transmission electron microscopy (TEM), which indicated that an exothermal reaction could be attributed to the crystallization of the LPS glass. To further understand the origin of the exothermic reaction, in this study, the precipitated crystalline phase of LPS glass in the NMC-LPS composite was examined. In situ TEM observations revealed that the β-LiPS precipitated at approximately 200 °C, and then LiPS and LiS precipitated at approximately 400 °C. Because the LiPS and LiS crystalline phases do not precipitate in the single LPS glass, the interfacial contact between LPS and NMC has a significant influence on both the LPS crystallization behavior and the exothermal reaction in the NMC-LPS composites.
硫化物基全固态锂电池是一种由不可燃且具有高离子导电性的无机固体电解质组成的下一代电源。包含LiNiMnCoO(NMC)和75LiS·25PS(LPS)玻璃电解质的正极复合材料表现出优异的充放电循环性能,是实现全固态电池的有前途的候选材料。通过透射电子显微镜(TEM)研究了NMC-LPS复合材料的热稳定性,结果表明放热反应可能归因于LPS玻璃的结晶。为了进一步了解放热反应的起源,在本研究中,对NMC-LPS复合材料中LPS玻璃的析出结晶相进行了研究。原位TEM观察表明,β-LiPS在约200°C时析出,然后LiPS和LiS在约400°C时析出。由于LiPS和LiS结晶相不会在单一的LPS玻璃中析出,因此LPS与NMC之间的界面接触对NMC-LPS复合材料中LPS的结晶行为和放热反应都有重大影响。