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Nanoflake-Assembled Hierarchical Na3V2(PO4)3/C Microflowers: Superior Li Storage Performance and Insertion/Extraction Mechanism

机译:纳米薄片组装的分层Na3V2(PO4)3 / C微型花:优异的锂存储性能和插入/提取机制

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摘要

Na3V2(PO4)3 (NVP) has excellent electrochemical stability and fast ion diffusion coefficient due to the 3D Na+ ion superionic conductor framework, which make it an attractive cathode material for lithium ion batteries (LIBs). However, the electrochemical performance of NVP needs to be further improved for applications in electric vehicles and hybrid electric vehicles. Here, nanoflake-assembled hierarchical NVP/C microflowers are synthesized using a facile method. The structure of as-synthesized materials enhances the electrochemical performance by improving the electron conductivity, increasing electrode–electrolyte contact area, and shortening the diffusion distance. The as-synthesized material exhibits a high capacity (230 mAh g−1), excellent cycling stability (83.6% of the initial capacity is retained after 5000 cycles), and remarkable rate performance (91 C) in hybrid LIBs. Meanwhile, the hybrid LIBs with the structure of NVP || 1 m LiPF6/EC (ethylene carbonate) + DMC (dimethyl carbonate) || NVP and Li4Ti5O12 || 1 m LiPF6/EC + DMC || NVP are assembled and display capacities of 79 and 73 mAh g−1, respectively. The insertion/extraction mechanism of NVP is systematically investigated, based on in situ X-ray diffraction. The superior electrochemical performance, the design of hybrid LIBs, and the insertion/extraction mechanism investigation will have profound implications for developing safe and stable, high-energy, and high-power LIBs.
机译:Na3V2(PO4)3(NVP)由于具有3D Na +离子超离子导体骨架,因此具有出色的电化学稳定性和快速的离子扩散系数,这使其成为锂离子电池(LIB)的有吸引力的正极材料。然而,NVP的电化学性能需要进一步提高以用于电动车辆和混合电动车辆中。在这里,使用方便的方法合成了纳米片组装的分层NVP / C微型花。合成后的材料的结构通过提高电子传导性,增加电极与电解质的接触面积并缩短扩散距离来增强电化学性能。合成后的材料显示出高容量(230 mAh g-1),出色的循环稳定性(在5000次循环后保留了初始容量的83.6%)和混合LIB中出色的速率性能(91 C)。同时,具有NVP ||结构的混合LIB 1 m LiPF6 / EC(碳酸亚乙酯)+ DMC(碳酸二甲酯)|| NVP和Li4Ti5O12 || 1 m LiPF6 / EC + DMC || NVP已组装,显示容量分别为79和73 mAh g-1。基于原位X射线衍射系统地研究了NVP的插入/提取机理。优异的电化学性能,混合型LIB的设计以及插入/提取机理的研究将对开发安全,稳定,高能量和高功率的LIB产生深远的影响。

著录项

  • 来源
    《Advanced energy materials》 |2015年第10期|1-10|共10页
  • 作者单位

    State Key Laboratory of Advanced Technology for Materials Synthesis and Processing WUT-Harvard Joint Nano Key Laboratory Wuhan University of Technology Wuhan P.R. China;

    Cullen College of Engineering Department of Electrical and Computer Engineering University of Houston Houston TX USA;

    State Key Laboratory of Advanced Technology for Materials Synthesis and Processing WUT-Harvard Joint Nano Key Laboratory Wuhan University of Technology Wuhan P.R. China;

    State Key Laboratory of Advanced Technology for Materials Synthesis and Processing WUT-Harvard Joint Nano Key Laboratory Wuhan University of Technology Wuhan P.R. China;

    State Key Laboratory of Advanced Technology for Materials Synthesis and Processing WUT-Harvard Joint Nano Key Laboratory Wuhan University of Technology Wuhan P.R. China;

    State Key Laboratory of Advanced Technology for Materials Synthesis and Processing WUT-Harvard Joint Nano Key Laboratory Wuhan University of Technology Wuhan P.R. China;

    Institut National de la Recherche Scientifique (INRS) 1650 Boulevard Lionel-Boulet Varennes Quebec Canada;

    Cullen College of Engineering Department of Electrical and Computer Engineering University of Houston Houston TX USA;

    State Key Laboratory of Advanced Technology for Materials Synthesis and Processing WUT-Harvard Joint Nano Key Laboratory Wuhan University of Technology Wuhan P.R. China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    high-capacity materials; electrodes; electrochemistry; insertion/extraction mechanisms; long-life; Na3V2(PO4)3;

    机译:高容量材料;电极;电化学;插入/萃取机理;长寿命;Na3V2(PO4)3;

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