| Literature DB >> 33311507 |
Jin Zhang1,2,3, Qinchao Wang4, Shaofeng Li2, Zhisen Jiang2, Sha Tan4, Xuelong Wang4, Kai Zhang1, Qingxi Yuan5, Sang-Jun Lee2, Charles J Titus6, Kent D Irwin6, Dennis Nordlund2, Jun-Sik Lee2, Piero Pianetta2, Xiqian Yu7, Xianghui Xiao8, Xiao-Qing Yang4, Enyuan Hu9, Yijin Liu10.
Abstract
Lithium-rich nickel-manganese-cobalt (LirNMC) layered material is a promising cathode for lithium-ion batteries thanks to its large energy density enabled by coexisting cation and anion redox activities. It however suffers from a voltage decay upon cycling, urging for an in-depth understanding of the particle-level structure and chemical complexity. In this work, we investigate the Li1.2Ni0.13Mn0.54Co0.13O2 particles morphologically, compositionally, and chemically in three-dimensions. While the composition is generally uniform throughout the particle, the charging induces a strong depth dependency in transition metal valence. Such a valence stratification phenomenon is attributed to the nature of oxygen redox which is very likely mostly associated with Mn. The depth-dependent chemistry could be modulated by the particles' core-multi-shell morphology, suggesting a structural-chemical interplay. These findings highlight the possibility of introducing a chemical gradient to address the oxygen-loss-induced voltage fade in LirNMC layered materials.Entities:
Year: 2020 PMID: 33311507 DOI: 10.1038/s41467-020-20198-w
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919