A facile strategy for developing uniform hierarchical Na3V2(PO4)2F3@carbonized polyacrylonitrile multi-clustered hollow microspheres for high-energy-density sodium-ion batteries

聚丙烯腈 材料科学 乙二醇 水热碳化 化学工程 电化学 涂层 碳化 阴极 扩散 纳米技术 碳纤维 电解质 复合数 扫描电子显微镜 复合材料 电极 聚合物 化学 物理化学 工程类 物理 热力学
作者
Kang Liang,Shijie Wang,Hongshun Zhao,Xiaobing Huang,Yurong Ren,Zhenjiang He,Jing Mao,Junchao Zheng
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:428: 131780-131780 被引量:58
标识
DOI:10.1016/j.cej.2021.131780
摘要

Na superionic conductor structured Na3V2(PO4)2F3 (NVPF) has received considerable attention as a cathode material for sodium-ion batteries because of its higher energy density and three-dimensional open structure for Na+ diffusion channels. However, its insulating structure [PO4] results in significantly inferior conductivity, which severely limits the electrochemical performance of NVPF. In this study, uniform carbonized polyacrylonitrile-coated hierarchical Na3V2(PO4)2F3 multi-clustered hollow microspheres ([email protected]) were synthesized via a facile ethylene glycol-assisted hydrothermal approach, followed by a wet chemical method and heat treatment. Further, the possible formation mechanism of hierarchical Na3V2(PO4)2F3 multi-clustered hollow microspheres was investigated. The concentration of ethylene glycol and hydrothermal reaction time were found to play essential roles in the formation mechanism of the microspheres. The as-prepared [email protected] delivered a high discharge capacity of 116.2 mAh g−1 at 0.2C and impressive cycling stability of 85% at 5C after 2000 cycles. When assembled as [email protected]||commercial hard carbon ([email protected]||CHC) for sodium-ion full cells, which demonstrates a specific capacity of 107 mAh g−1 at 0.2C, thus achieving an energy density of 376.4 Wh kg−1 at a power density of 141 W kg−1. These results can be attributed to the structural regulation of multi-level clusters, which improved the Na+ diffusion rate and carbon coating strategy. Such a combination of structural regulation and carbon-coating strategy can provide a strategy to synthesize materials with multi-level clusters of hollow microspheres to increase the electronic conductivity and enhance the electrochemical performance of energy-storage devices.
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