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钴介导的缺陷工程赋予用于先进钠离子存储的高可逆非晶态钒硫化物负极

Cobalt-Mediated Defect Engineering Endows High Reversible Amorphous VS Anode for Advanced Sodium-Ion Storage.

作者信息

Zhang Di, Shao Yachuan, Wang Jian, Li Zhaojin, Wang Qiujun, Sun Huilan, Sun Qujiang, Wang Bo

机构信息

Hebei Key Laboratory of Flexible Functional Materials, School of Materials Science and Engineering, Hebei University of Science and Technology, Shijiazhuang, 050000, China.

Centre for Ionics, Department of Physics, Faculty of Science, University of Malaya, Kuala Lumpur, 50603, Malaysia.

出版信息

Small. 2024 Jul;20(27):e2309901. doi: 10.1002/smll.202309901. Epub 2024 Feb 1.

Abstract

Metal sulfides are promising anode materials for sodium-ion batteries (SIBs) due to their structural diversity and high theoretical capacity, but the severe capacity decay and inferior rate capability caused by poor structural stability and sluggish kinetics impede their practical applications. Herein, a cobalt-doped amorphous VS wrapped by reduced graphene oxide (i.e., Co-VS/rGO) is developed through a Co-induced defect engineering strategy to boost the kinetics performances. The as-prepared Co-VS/rGO demonstrates excellent rate capacities over 10 A g and superior cycling stability at 5 A g over 1600 cycles, which is attributed to the defects formed by Co doping, the formed amorphous structure and the robust rGO substrate. The great features of Co-VS/rGO anode are further confirmed in sodium-ion capacitors when the active carbon cathode is used. Additionally, the relationships between metal doping, the derived defects, the amorphous structure, and the sodium storage of VS are uncovered. This work provides deep insights into preparing amorphous functional materials and also probes the potential applications of metal sulfide-based electrode materials for advanced batteries.

摘要

金属硫化物因其结构多样性和高理论容量而有望成为钠离子电池(SIB)的负极材料,但结构稳定性差和动力学迟缓导致的严重容量衰减和较差的倍率性能阻碍了它们的实际应用。在此,通过钴诱导缺陷工程策略开发了一种由还原氧化石墨烯包裹的钴掺杂非晶态VS(即Co-VS/rGO),以提高动力学性能。所制备的Co-VS/rGO在电流密度超过10 A g时表现出优异的倍率性能,在5 A g下循环1600次以上具有出色的循环稳定性,这归因于钴掺杂形成的缺陷、形成的非晶态结构以及坚固的rGO基底。当使用活性炭阴极时,Co-VS/rGO负极的优异特性在钠离子电容器中得到进一步证实。此外,还揭示了金属掺杂、衍生缺陷、非晶态结构与VS储钠之间的关系。这项工作为制备非晶态功能材料提供了深刻见解,也探索了基于金属硫化物的电极材料在先进电池中的潜在应用。

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