法拉第效率
阴极
材料科学
过渡金属
化学工程
氧气
锂(药物)
氧化还原
结构稳定性
四面体
金属
化学键
结晶学
无机化学
化学
图层(电子)
化学物理
工作(物理)
化学稳定性
晶体结构
表面改性
格子(音乐)
结构变化
氧化物
催化作用
离子
表层
铂金
电极
固溶体
作者
J L Zhang,Yuan Feng,Haoxiang Sun,Weisong Zhang,Te Zhang,Zhenhua Jia,Z H Zhang,Wei Yang,Hui Li,Feiran Shen,Weiwei Xie,Yixin Li,Zhenhua Yan,Kai Zhang,Jun Chen
摘要
ABSTRACT Li‐rich Mn‐based layered oxides (LRMOs) are considered promising cathode candidates for next‐generation high‐energy‐density lithium batteries, owing to their high capacity and low cost. However, they are plagued by lattice‐oxygen release and surface‐driven structural degradation, which lead to low initial coulombic efficiency and poor cycling stability. Here, a B‐heterogeneous coordination structure is incorporated into the Li‐rich materials, forming a ≈4 nm surface layer enriched in BO 3 units while retaining BO 4 units within the bulk. Both of tetrahedral BO 4 and trigonal BO 3 display stronger bonding interaction than those of transition metal (TM)─O bonds (i.e., Mn─O, Ni─O, and Co─O), while surface BO 3 further strengthens the B─O bonds compared with bulk BO 4 , thus robustly anchoring lattice oxygen to suppress irreversible oxygen loss. Benefiting from this synergistic heterogeneous coordination, the modified LRMOs deliver a high reversible capacity of ∼300 mAh g −1 at 0.1C, an enhanced initial Coulombic efficiency of 93.5% and excellent capacity retention of 85.8% after 300 cycles at 1C. This work demonstrates the surface BO 3 structure as an effective paradigm to reconcile oxygen‐redox activity with long‐term stability in high‐energy‐density lithium batteries.
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