DOI: 10.1002/ange.4447296 ISSN: 0044-8249

Competitive Adsorption and Structural Reinforcement Synergy Stabilizes High‐Voltage Quasi‐Solid‐State Batteries

Lifen Zhang, Zongtao Lu, Song Duan, Bingsen Qin, Hongyao Wang, Peng Wang, Zhenghao Li, Junfei Zhu, Junwen Fu, Zhiyang Yu, Sijie Liu, Can Liao, Wei Yan, Jiujun Zhang, Yun Zheng

ABSTRACT

Quasi‐solid‐state batteries (QSSBs) employing high‐voltage cathodes promise high energy density and safety, yet suffer from unstable cathode/electrolyte interfaces and cathode degradation. Here, we propose a competitive adsorption and structural reinforcement synergy (CASR) strategy to address these challenges. Specifically, a Cu‐centered self‐adsorption molecule is incorporate into the polymer electrolyte, which preferentially adsorbs at the cathode/electrolyte interface through competitive adsorption against solvent molecules, thereby reducing the solvent content on the cathode surface while promoting anion enrichment. This process induces the formation of a uniform F‐rich cathode/electrolyte interphase with a LiF‐rich outer layer and an inner layer containing Cu─F bonds, thereby effectively suppressing cathode degradation. Cathode structural stability is further reinforced through dynamic Cu doping into TM‐deficient lattice sites during cycling. Under low‐loading coin‐cell conditions (2.0 mg cm −2 ), the resulting Li||LiNi 0.8 Co 0.1 Mn 0.1 O 2 QSSBs retain 80% of their initial capacity after 400 cycles at 4.6 V, and achieve 80% capacity retention over 1000 cycles under 10C and 4.5 V. A 1 Ah‐level pouch‐cell tested under 4.3 V and 1C charge/0.5C discharge conditions supports the potential of the CASR strategy. This work provides a promising pathway for synchronously stabilizing cathode/electrolyte interface and cathode structure in high‐voltage QSSBs.

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