Zuo Wenhua, Liu Xiangsi, Qiu Jimin, Zhang Dexin, Xiao Zhumei, Xie Jisheng, Ren Fucheng, Wang Jinming, Li Yixiao, Ortiz Gregorio F, Wen Wen, Wu Shunqing, Wang Ming-Sheng, Fu Riqiang, Yang Yong
State Key Laboratory for Physical Chemistry of Solid Surfaces, Department of Chemistry, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, People's Republic of China.
School of Advanced Materials, Peking University Shenzhen Graduate School, Shenzhen, People's Republic of China.
Nat Commun. 2021 Aug 12;12(1):4903. doi: 10.1038/s41467-021-25074-9.
Layered transition metal oxides are the most important cathode materials for Li/Na/K ion batteries. Suppressing undesirable phase transformations during charge-discharge processes is a critical and fundamental challenge towards the rational design of high-performance layered oxide cathodes. Here we report a shale-like NaMnO (S-NMO) electrode that is derived from a simple but effective water-mediated strategy. This strategy expands the Na layer spacings of P2-type NaMnO and transforms the particles into accordion-like morphology. Therefore, the S-NMO electrode exhibits improved Na mobility and near-zero-strain property during charge-discharge processes, which leads to outstanding rate capability (100 mAh g at the operation time of 6 min) and cycling stability (>3000 cycles). In addition, the water-mediated strategy is feasible to other layered sodium oxides and the obtained S-NMO electrode has an excellent tolerance to humidity. This work demonstrates that engineering the spacings of alkali-metal layer is an effective strategy to stabilize the structure of layered transition metal oxides.
层状过渡金属氧化物是锂/钠/钾离子电池最重要的阴极材料。在充放电过程中抑制不期望的相变是合理设计高性能层状氧化物阴极面临的关键且基本的挑战。在此,我们报道了一种源自简单但有效的水介导策略的页岩状NaMnO(S-NMO)电极。该策略扩大了P2型NaMnO的钠层间距,并将颗粒转变为手风琴状形态。因此,S-NMO电极在充放电过程中表现出改善的钠迁移率和近零应变特性,这导致了出色的倍率性能(在6分钟的运行时间内为100 mAh g)和循环稳定性(>3000次循环)。此外,水介导策略对其他层状钠氧化物是可行的,并且所获得的S-NMO电极对湿度具有优异的耐受性。这项工作表明,设计碱金属层的间距是稳定层状过渡金属氧化物结构的有效策略。