Hao Youchen, Xia Yufan, Liu Wen, Sun Guojie, Feng Lihua, Zhou Xiaochong, Iqbal Sikandar, Tian Ziqi, Zhang Zhongcai, Li Yong, Zhang Xuan, Jiang Yinzhu
School of Materials Science and Engineering, Zhejiang University, Hangzhou, 310027, China.
Future Science Research Institute, ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou, 311215, China.
Adv Sci (Weinh). 2024 Jul;11(26):e2401514. doi: 10.1002/advs.202401514. Epub 2024 May 2.
Layered oxides of sodium-ion batteries suffer from severe side reactions on the electrode/electrolyte interface, leading to fast capacity degradation. Although surface reconstruction strategies are widely used to solve the above issues, the utilization of the low-cost wet chemical method is extremely challenging for moisture-sensitive Na-based oxide materials. Here, the solvation tuning strategy is proposed to overcome the deterioration of NaNiMnFeO in water-based solution and conduct the surface reconstruction. When capturing the water molecules by the solvation structure of cations, here is Li, the structural collapse and degradation of layered oxides in water-based solvents are greatly mitigated. Furthermore, Li(HO)EA promotes the profitable Li/Na exchange to build a robust surface, which hampers the decomposition of electrolytes and the structural evolution upon cycling. Accordingly, the lifespan of Li-reinforced materials is prolonged to three times that of the pristine one. This work represents a step forward in understanding the surface reconstruction operated in a water-based solution for high-performance sodium layered oxide cathodes.
钠离子电池的层状氧化物在电极/电解质界面会发生严重的副反应,导致容量快速衰减。尽管表面重构策略被广泛用于解决上述问题,但对于对水分敏感的钠基氧化物材料而言,采用低成本的湿化学方法极具挑战性。在此,我们提出溶剂化调控策略,以克服NaNiMnFeO在水基溶液中的劣化问题并进行表面重构。当通过阳离子(此处为Li)的溶剂化结构捕获水分子时,层状氧化物在水基溶剂中的结构坍塌和降解会大大减轻。此外,Li(HO)EA促进了有益的Li/Na交换,从而构建了一个坚固的表面,这抑制了电解质的分解以及循环过程中的结构演变。因此,锂增强材料的寿命延长至原始材料的三倍。这项工作在理解用于高性能钠层状氧化物阴极的水基溶液中的表面重构方面向前迈进了一步。