Hou Wen-Hui, Feng Qingqing, Liu Cheng, Zhang Xiaole, Yue Junpei, Tian Qi, Wu Shanbin, Ou Yu, Zhou Pan, Xia Yingchun, Wang Yan, Song Xuan, Zhou Haiyu, Lu Yang, Yan Shuaishuai, Liu Kai
Department of Chemical Engineering, Tsinghua University, Beijing, 100084, China.
Tsinghua University Hefei Institute for Public Safety Research, Anhui, 230601, China.
Adv Mater. 2025 Jul;37(28):e2503893. doi: 10.1002/adma.202503893. Epub 2025 May 6.
The lithium-rich manganese-based layered oxide (LRMO) cathode shows grar promise for high-energy density and environment-friendly batteries due to its cation and anion redox. However, it suffers from continuous electrolyte consumption and capacity decay, especially at high mass loadings (>10 mg cm). Conventional electrolyte/interphase strategies fail to address the structural characteristics of LRMO, limiting its practical application. Here, we reveal the specific requirements for cathode electrolyte interphase (CEI) of LRMO and accordingly design a non-fluorinated additive, 2,4,6-trivinyl-2,4,6-trimethylcyclotrisiloxane (TVTMS). TVTMS could form a crosslinked hetero-chain polymeric CEI (CHP-CEI) through ring-opening polymerization and ethylene group crosslinking, offering a unique balance of high robustness, flexibility, and mechanical energy dissipation, which could not be achieved by conventional additives. Therefore, the cracking of LRMO cathode, gas release and transition metal dissolution were effectively mitigated. It should be noted that, for the first time to our knowledge, we employed the single-particle aerosol mass spectrometry (SPAMS) to study CEI components, especially the organic/polymer species. The Li|LRMO cells based on CHP-CEI display a lifespan >825 cycles with remained capacity of 204 mAh g and the cells with high-loading cathode (12 mg cm) achieve stable cycling >145 cycles with 80% capacity retention, which surpasses the performance of previously reported electrolytes.
富锂锰基层状氧化物(LRMO)正极因其阳离子和阴离子氧化还原特性,在高能量密度和环境友好型电池方面展现出巨大潜力。然而,它存在持续的电解质消耗和容量衰减问题,尤其是在高质量负载(>10 mg cm)时。传统的电解质/界面策略无法解决LRMO的结构特性问题,限制了其实际应用。在此,我们揭示了LRMO正极电解质界面(CEI)的特定要求,并据此设计了一种非氟化添加剂,即2,4,6-三乙烯基-2,4,6-三甲基环三硅氧烷(TVTMS)。TVTMS可通过开环聚合和乙烯基交联形成交联杂链聚合物CEI(CHP-CEI),提供了高稳健性、柔韧性和机械能耗散的独特平衡,这是传统添加剂无法实现的。因此,有效减轻了LRMO正极的开裂、气体释放和过渡金属溶解。应当指出,据我们所知,我们首次采用单颗粒气溶胶质谱法(SPAMS)来研究CEI成分,特别是有机/聚合物种类。基于CHP-CEI的Li|LRMO电池循环寿命>825次,剩余容量为204 mAh g,而具有高负载正极(12 mg cm)的电池实现了>145次的稳定循环,容量保持率为80%,超过了先前报道的电解质的性能。