材料科学
钒
硫化物
复合数
硫化铁
钠
硫化钠
离子
无机化学
铋
化学工程
冶金
硫黄
复合材料
有机化学
工程类
化学
作者
Ying Kang,Yangyang Guo,Weixiang Chen,Jianguo Huang
标识
DOI:10.1021/acsami.5c05860
摘要
Vanadium sulfide, as a transition metal sulfide with a unique layered structure and good redox properties, has become a research hotspot for anodic materials of sodium-ion batteries (SIBs) due to its high theoretical capacity, good structural tunability, and low cost. However, the electrochemical performance of vanadium sulfide is hindered by its poor structural stability and slow ion diffusion kinetics during charge and discharge processes, which limits its practical applications. Herein, a dual metal-sulfide-based tubular nanoarchitectonic (TiO2@VS4/Bi2S3 composite) with cellulose-derived titania nanotubes as the structural scaffold was constructed through the sol-gel and hydrothermal methods. In this composite material, the VS4/Bi2S3 nanorods were uniformly coated on the surface of the titania nanotubes, forming a three-dimensional (3D) network porous structure. Transmission electron microscopy results confirmed the formation of the abundant phase interfaces during cycling, which greatly improved the structural integrity of the material. Compared to the VS4/Bi2S3 anodic materials, the TiO2@VS4/Bi2S3 nanotubular composite exhibited superior sodium storage performances, especially in terms of long cycling stability. At a current density of 5.0 A g-1, the nanotubular composite retained a reversible capacity of 669.5 mA h g-1 after 1000 cycles. The cross-linked TiO2@VS4/Bi2S3 nanotubular composite effectively enhanced charge transfer and sodium-ion transport kinetics, alleviating the volume expansions and voltage failure issues. Meanwhile, the TiO2@VS4/Bi2S3//Na3V2(PO4)3 full cells maintained a capacity of 276.8 mA h g-1 and an energy density of 392.7 Wh kg-1 after 400 cycles at 1.0 A g-1, demonstrating good practical application potential.
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