期刊
SMALL METHODS
卷 5, 期 4, 页码 -出版社
WILEY-V C H VERLAG GMBH
DOI: 10.1002/smtd.202001021
关键词
anode; doping; lithium-ion battery; metal oxide; solid electrolyte interphase
资金
- Vector Foundation
- Helmholtz Association
- Projekt DEAL
CAMs offer higher specific capacities than graphite, but face challenges in maintaining a stable SEI due to significant volume changes. This study focuses on the SEI composition and evolution on transition metal doped zinc oxide as a CAM model compound, revealing that the presence of iron triggers electrolyte decomposition, which can be mitigated by stabilizing the interface with a carbonaceous coating. These findings advance the understanding of doped materials and metal oxide active materials.
Conversion/alloying materials (CAMs) provide substantially higher specific capacities than graphite, the state-of-the-art lithium-ion battery anode material. The ability to host much more lithium per unit weight and volume is, however, accompanied by significant volume changes, which challenges the realization of a stable solid electrolyte interphase (SEI). Herein, the comprehensive characterization of the composition and evolution of the SEI on transition metal (TM) doped zinc oxide as CAM model compound, is reported, with a particular focus on the impact of the TM dopant (Fe or Co). The results unveil that the presence of iron specifically triggers the electrolyte decomposition. However, this detrimental effect can be avoided by stabilizing the interface with the electrolyte by a carbonaceous coating. These findings provide a great leap forward toward the enhanced understanding of such doped materials and (transition) metal oxide active materials in general.
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