Se-Regulated MnS Porous Nanocubes Encapsulated in Carbon Nanofibers as High-Performance Anode for Sodium-Ion Batteries

阳极 材料科学 多孔性 纳米纤维 法拉第效率 化学工程 静电纺丝 碳纳米纤维 碳纤维 微观结构 离子 纳米技术 电极 复合数 复合材料 化学 碳纳米管 冶金 物理化学 有机化学 工程类 聚合物
作者
Puwu Liang,Duo Pan,Xiangyun Hu,Ke Yang,Yangjie Liu,Zijing Huo,Bo Zheng,Lihong Xu,Junhua Xu,Zhenhai Wen
出处
期刊:Nano-micro Letters [Springer Science+Business Media]
卷期号:17 (1): 237-237 被引量:19
标识
DOI:10.1007/s40820-025-01767-4
摘要

Abstract Manganese-based chalcogenides have significant potential as anodes for sodium-ion batteries (SIBs) due to their high theoretical specific capacity, abundant natural reserves, and environmental friendliness. However, their application is hindered by poor cycling stability, resulting from severe volume changes during cycling and slow reaction kinetics due to their complex crystal structure. Here, an efficient and straightforward strategy was employed to in-situ encapsulate single-phase porous nanocubic MnS 0.5 Se 0.5 into carbon nanofibers using electrospinning and the hard template method, thus forming a necklace-like porous MnS 0.5 Se 0.5 -carbon nanofiber composite (MnS 0.5 Se 0.5 @N-CNF). The introduction of Se significantly impacts both the composition and microstructure of MnS 0.5 Se 0.5 , including lattice distortion that generates additional defects, optimization of chemical bonds, and a nano-spatially confined design. In situ/ex-situ characterization and density functional theory calculations verified that this MnS 0.5 Se 0.5 @N-CNF alleviates the volume expansion and facilitates the transfer of Na + /electron. As expected, MnS 0.5 Se 0.5 @N-CNF anode demonstrates excellent sodium storage performance, characterized by high initial Coulombic efficiency (90.8%), high-rate capability (370.5 mAh g −1 at 10 A g −1 ) and long durability (over 5000 cycles at 5 A g −1 ). The MnS 0.5 Se 0.5 @N-CNF //NVP@C full cell, assembled with MnS 0.5 Se 0.5 @N-CNF as anode and Na 3 V 2 (PO 4 ) 3 @C as cathode, exhibits a high energy density of 254 Wh kg −1 can be provided. This work presents a novel strategy to optimize the design of anode materials through structural engineering and Se substitution, while also elucidating the underlying reaction mechanisms.
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