| Literature DB >> 30977261 |
Shuo Wang1,2, Qiang Bai2, Adelaide M Nolan2, Yunsheng Liu2, Sheng Gong1, Qiang Sun1, Yifei Mo2,3.
Abstract
Enabling all-solid-state Li-ion batteries requires solid electrolytes with high Li ionic conductivity and good electrochemical stability. Following recent experimental reports of Li3 YCl6 and Li3 YBr6 as promising new solid electrolytes, we used first principles computation to investigate the Li-ion diffusion, electrochemical stability, and interface stability of chloride and bromide materials and elucidated the origin of their high ionic conductivities and good electrochemical stabilities. Chloride and bromide chemistries intrinsically exhibit low migration energy barriers, wide electrochemical windows, and are not constrained to previous design principles for sulfide and oxide Li-ion conductors, allowing for much greater freedom in structure, chemistry, composition, and Li sublattice for developing fast Li-ion conductors. Our study highlights chloride and bromide chemistries as a promising new research direction for solid electrolytes with high ionic conductivity and good stability.Entities:
Keywords: Li-ion batteries; all-solid-state batteries; first principles computation; halides; solid electrolytes
Year: 2019 PMID: 30977261 DOI: 10.1002/anie.201901938
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336