材料科学
阴极
化学工程
氧化物
兴奋剂
电化学
图层(电子)
扩散
结构稳定性
纳米技术
储能
商业化
耐久性
Crystal(编程语言)
碳纤维
金属
晶体结构
结晶
表面改性
作者
Jinpin Wu,Quanfeng Dong,Zong‐Yu Guan,Shuo Li,Yuanyuan Liu,Jiaqing Wang,Zi‐Teng Jian,Junhang Tian,Xueyi Sun,Biwei Xiao,Weidong Zhuang
出处
期刊:Rare Metals
[Springer Science+Business Media]
日期:2025-11-03
卷期号:44 (12): 9963-9974
被引量:1
标识
DOI:10.1007/s12598-025-03591-6
摘要
Abstract Layered oxide cathode materials have attracted significant attention due to their high energy density. However, their practical commercialization in sodium‐ion batteries has been hindered by drawbacks such as poor air stability and cycle performance. Herein, we present a simple strategy to address these obstacles through Ti doping. Interestingly, Ti doping can increase the Na layer spacing while decreasing the transition metal layer spacing. The modified interlayer space ensures a greater Na + diffusion coefficient and improved rate performance. Moreover, the high‐spin Mn 3+ content decreases after Ti doping, which mitigates the Jahn–Teller effect and improves structural stability. As a result, the Na 0.55 Ni 0.1 Fe 0.1 Mn 0.65 Ti 0.15 O 2 cathode material delivers a capacity retention of 77.11% after 150 cycles at 1C, which is much higher than 55.02% of Na 0.55 Ni 0.1 Fe 0.1 Mn 0.8 O 2 . Meanwhile, the air stability evaluation reveals that carbon dioxide and water promote the formation of the hydrate phase. Ti doping can inhibit the exchange of H + and Na + , as well as the formation of residual sodium species. Furthermore, the electrochemical performance deterioration caused by the water will be alleviated. These findings provide valuable insight into the development of layered oxide cathode materials with needed cycling performance and air stability for the commercialization of SIBs.
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