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用于高性能钠离子电池的铜掺杂球形P2型NaFeCuMnO阴极

Cu-Doped Spherical P2-Type NaFeCuMnO Cathode for High-Performance Sodium-Ion Batteries.

作者信息

Zhou Xiaoya, Huang Xin, Cui Yuchen, Zhu Yong, Wang Liangliang, Wang Xuebin, Tang Shaochun

机构信息

Key National Laboratory of Solid State Microstructures, Collaborative Innovation Center of Advanced Microstructures, Jiangsu Key Laboratory of Artificial Functional Materials, College of Engineering and Applied Sciences, Nanjing University, Nanjing 210093, PR China.

Key Nantong Jintong energy storage power new material Co., LTD, Nantong 226010, PR China.

出版信息

ACS Appl Mater Interfaces. 2024 Jul 17;16(28):36354-36362. doi: 10.1021/acsami.4c05516. Epub 2024 Jul 2.

Abstract

Sodium-ion batteries (SIBs), owing to their abundant resources and cost-effectiveness, have garnered considerable interest in the realm of large-scale energy storage. The properties of cathode materials profoundly affect the cycle stability and specific capacity of batteries. Herein, a series of Cu-doped spherical P2-type NaFeCuMnO ( = 0, 0.05, 0.09, and 0.14, -NFCMO) was fabricated using a convenient hydrothermal method. The successful doping of Cu efficaciously mitigated the Jahn-Teller effect, augmented the electrical conductivity of the material, and diminished the resistance to charge transfer. The distinctive spherical structure remained stable and withstood considerable volumetric strain, thereby improving the cyclic stability of the material. The optimized 0.09-NFCMO cathode exhibited a high specific capacity of 168.6 mAh g at 100 mA g, a superior rate capability (90.9 mAh g at 2000 mA g), and a good cycling stability. This unique structure design and doping approach provides new insights into the design of advanced electrode materials for sodium-ion batteries.

摘要

钠离子电池(SIBs)因其资源丰富且具有成本效益,在大规模储能领域引起了广泛关注。阴极材料的性能对电池的循环稳定性和比容量有深远影响。在此,采用简便的水热法制备了一系列铜掺杂的球形P2型NaFeCuMnO(x = 0、0.05、0.09和0.14,即 -NFCMO)。铜的成功掺杂有效减轻了 Jahn-Teller 效应,提高了材料的电导率,并降低了电荷转移电阻。独特的球形结构保持稳定,能够承受相当大的体积应变,从而提高了材料的循环稳定性。优化后的0.09-NFCMO阴极在100 mA g下表现出168.6 mAh g的高比容量、优异的倍率性能(在2000 mA g下为90.9 mAh g)和良好的循环稳定性。这种独特的结构设计和掺杂方法为钠离子电池先进电极材料的设计提供了新的思路。

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