| Literature DB >> 30347983 |
Haijun Yu1, Yeong-Gi So2, Yang Ren3, Tianhao Wu1, Gencai Guo1, Ruijuan Xiao4, Jun Lu5, Hong Li4, Yubo Yang1, Haoshen Zhou6, Ruzhi Wang1, Khalil Amine5, Yuichi Ikuhara2.
Abstract
Cathodes of lithium-rich layered oxides for high-energy Li-ion batteries in electrically powered vehicles are attracting considerable attention by the research community. However, current research is insufficient to account for their complex reaction mechanism and application. Here, the structural evolution of lithium-manganese-rich layered oxides at different temperatures during electrochemical cycling has been investigated thoroughly, and their structural stability has been designed. The results indicated structure conversion from the two structures into a core-shell structure with a single distorted-monoclinic LiTMO2 structure core and disordered-spinel/rock salt structure shell, along with lattice oxygen extraction and lattice densification, transition- metal migration, and aggregation on the crystal surface. The structural conversion behavior was found to be seriously temperature sensitive, accelerated with higher temperature, and can be effectively adjusted by structural design. This study clarifies the structural evolution mechanism of these lithium-rich layered oxides and opens the door to the design of similar high-energy materials with better cycle stability.Entities:
Year: 2018 PMID: 30347983 DOI: 10.1021/jacs.8b07858
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419