材料科学
电解质
阴极
化学工程
电化学
涂层
相间
硅氧烷
氧化物
电极
纳米技术
复合材料
聚合物
化学
物理化学
生物
工程类
冶金
遗传学
作者
Rosy Rosy,Shira Haber,Eliran Evenstein,Arka Saha,Olga Brontvein,Yosi Kratish,Dmitry Bravo‐Zhivotovskii,Yitzhak Apeloig,Michal Leskes,Malachi Noked
标识
DOI:10.1016/j.ensm.2020.08.015
摘要
The commercialization of the high energy, lithium, and manganese-rich NCM (LMR-NCM) is impeded by its complex interfacial electrochemical processes, oxygen release, and surface degradation. Here, we introduced t-butyl-dimethylsilyllithium as a single-source precursor for depositing LixSiyOz with an integrated network of siloxane moieties as an artificial cathode/electrolyte interphase (ACEI) which stabilizes LMR-NCM by mitigating oxygen release, electrolyte degradation and preventing fractures. Using solid-state NMR coupled with dynamic nuclear polarization, detailed molecular-level characterization of the ACEI is presented. The proposed CEI enabled improved energy-density at high rates (644 Wh.kg-1, compared to uncoated material with 457 Wh.kg-1 at 4C) with suppressed parasitic reactions and O2 evolution. The efficacy of the CEI is demonstrated in full graphite/LMR-NCM pouch cells with ~ 35% enhanced capacity and >80% capacity retention over 200 cycles. Altogether, these results present the importance of careful selection and design of surface chemistry for stabilizing the electrode/electrolyte interphase in challenging battery chemistries.
科研通智能强力驱动
Strongly Powered by AbleSci AI