煅烧
材料科学
阴极
氧气
合理设计
分压
格子(音乐)
热力学
理想(伦理)
离子
航程(航空)
固溶体
化学工程
二进制数
相(物质)
大气温度范围
纳米技术
氧化物
材料性能
晶格常数
热力学平衡
氧气储存
相变
电极
工艺工程
高压
晶体结构
作者
Yongqi Sun,Gui Chu,Xiaobo Zhu,Tobias U. Schülli,Tongen Lin,Desheng Feng,Xiaodong Ma,Lianzhou Wang
标识
DOI:10.1002/anie.202518127
摘要
Oxygen vacancies (OVs) play a critical role in tuning the properties of oxides, yet their rational control remains challenging. We present a meticulous engineering approach to modulate OVs in lithium-rich layered oxides (LRLOs), a promising cathode material for next-generation lithium-ion batteries. Guided by a Mn-O2 binary phase diagram, our method achieves accurate and broad tuning of the oxygen partial pressure (PO2) during calcination using a pyrometallurgical CO/CO2 gas pair. Using an ultra-high-Mn LRLO model, we quantify a thermodynamic equilibrium between OV concentration and a wide PO2 range (10-0.7-10-10.0 atm). Structural characterizations reveal progressive lattice expansion and an unprecedented enhancement of Li@Mn6 superstructures. An optimized LRLO with 3.8 mol % OVs shows a sixfold improvement in initial discharge capacity (175.9 mAh g-1) over a reference sample (28.5 mAh g-1) at 0.1C, achieving a maximum capacity of 287.9 mAh g-1. Theoretical calculations clarify the role of OVs in modifying the electronic structure of LRLOs, which enables ideal conditioning for facile and reversible anion redox. This study provides a generalizable and facile strategy for OV engineering, which accelerates the commercial viability of LRLOs and offers a new framework for the rational design of other modern materials.
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