| Literature DB >> 35039645 |
Mun Sek Kim1,2, Zewen Zhang1, Paul E Rudnicki2, Zhiao Yu2,3, Jingyang Wang1,4, Hansen Wang1, Solomon T Oyakhire2, Yuelang Chen2,3, Sang Cheol Kim1, Wenbo Zhang1, David T Boyle1,3, Xian Kong2, Rong Xu1, Zhuojun Huang1,2, William Huang1, Stacey F Bent2, Lin-Wang Wang4, Jian Qin2, Zhenan Bao2, Yi Cui5,6.
Abstract
Designing a stable solid-electrolyte interphase on a Li anode is imperative to developing reliable Li metal batteries. Herein, we report a suspension electrolyte design that modifies the Li+ solvation environment in liquid electrolytes and creates inorganic-rich solid-electrolyte interphases on Li. Li2O nanoparticles suspended in liquid electrolytes were investigated as a proof of concept. Through theoretical and empirical analyses of Li2O suspension electrolytes, the roles played by Li2O in the liquid electrolyte and solid-electrolyte interphases of the Li anode are elucidated. Also, the suspension electrolyte design is applied in conventional and state-of-the-art high-performance electrolytes to demonstrate its applicability. Based on electrochemical analyses, improved Coulombic efficiency (up to ~99.7%), reduced Li nucleation overpotential, stabilized Li interphases and prolonged cycle life of anode-free cells (~70 cycles at 80% of initial capacity) were achieved with the suspension electrolytes. We expect this design principle and our findings to be expanded into developing electrolytes and solid-electrolyte interphases for Li metal batteries.Entities:
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Year: 2022 PMID: 35039645 DOI: 10.1038/s41563-021-01172-3
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 47.656