Feng Yi-Hu, Cheng Zhiwei, Xu Chen-Liang, Yu Lianzheng, Si Duo, Yuan Boheng, Liu Mengting, Zhao Bin, Wang Peng-Fei, Han Xiaogang
Center of Nanomaterials for Renewable Energy, State Key Laboratory of Electrical Insulation and Power Equipment, School of Electrical Engineering, Xi'an Jiaotong University, Xi'an 710049, Shaanxi, P. R. China.
ACS Appl Mater Interfaces. 2022 May 12. doi: 10.1021/acsami.2c03469.
O3-NaNiFeMnO layered oxide is considered one of the most promising cathode candidates for sodium-ion batteries because of its advantages, such as its large capacity and low cost. However, the practical application of this material is limited by its poor cyclic stability and insufficient rate capability. Here, a strategy to substitute the Fe in NaNiFeMnO with Al is adopted to address these issues. The substitution of Fe with Al enhances the framework stability and phase transition reversibility of the parent NaNiFeMnO material by forming a stronger TM-O bond, which improves the cycling stability. Moreover, partial Al substitution increases the interslab distance, providing a spacious path for Na diffusion and resulting in fast diffusion kinetics, which lead to improved rate capability. Consequently, the target NaNiFeAlMnO sample with optimal = 0.045 exhibits a remarkable electrochemical performance in a Na-ion cell with a large reversible capacity of 131.7 mA h g, a stable retention of approximately 81.6% after cycling at 1C for 100 cycles, and a rate performance of 81.3 mA h g at 10C. This method might pave the way for novel means of improving the electrochemical properties of layered transitional-metal oxides and provide insightful guidance for the design of low-cost cathode materials.
O3-NaNiFeMnO层状氧化物因其大容量和低成本等优点,被认为是钠离子电池最有前景的正极候选材料之一。然而,这种材料的实际应用受到其较差的循环稳定性和不足的倍率性能的限制。在此,采用一种用Al替代NaNiFeMnO中Fe的策略来解决这些问题。用Al替代Fe通过形成更强的TM-O键增强了母体NaNiFeMnO材料的骨架稳定性和相变可逆性,从而提高了循环稳定性。此外,部分Al替代增加了层间距离,为Na扩散提供了宽敞的路径,导致快速扩散动力学,进而提高了倍率性能。因此,最佳x = 0.045的目标NaNiFeAlMnO样品在钠离子电池中表现出卓越的电化学性能,具有131.7 mA h g的大可逆容量,在1C下循环100次后稳定保持约81.6%,在10C下的倍率性能为81.3 mA h g。该方法可能为改善层状过渡金属氧化物电化学性能的新方法铺平道路,并为低成本正极材料的设计提供有见地的指导。