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首页> 外文期刊>Advanced energy materials >Integrated Covalent Organic Framework/Carbon Nanotube Composite as Li-Ion Positive Electrode with Ultra-High Rate Performance
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Integrated Covalent Organic Framework/Carbon Nanotube Composite as Li-Ion Positive Electrode with Ultra-High Rate Performance

机译:以超高速率性能为锂离子正电极的集成共价有机骨架/碳纳米管复合材料

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摘要

Covalent organic frameworks (COFs) are promising electrode materials for Li-ion batteries. However, the utilization of redox-active sites embedded within COFs is often limited by the low intrinsic conductivities of bulk-grown material, resulting in poor electrochemical performance. Here, a general strategy is developed to improve the energy storage capability of COF-based electrodes by integrating COFs with carbon nanotubes (CNT). These COF composites feature an abundance of redox-active 2,7-diamino-9,10-phenanthrenequinone (DAPQ) based motifs, robust beta-ketoenamine linkages, and well-defined mesopores. The composite materials (DAPQ-COFX-where X = wt% of CNT) are prepared by in situ polycondensation and have tube-type core-shell structures with intimately grown COF layers on the CNT surface. This synergistic structural design enables superior electrochemical performance: DAPQ-COF50 shows 95% utilization of redox-active sites, long cycling stability (76% retention after 3000 cycles at 2000 mA g(-1)), and ultra-high rate capability, with 58% capacity retention at 50 A g(-1). This rate translates to charging times of approximate to 11 s (320 C), implying that DAPQ-COF50 holds excellent promise for high-power cells. Furthermore, the rate capability outperformed all previous reports for carbonyl-containing organic electrodes by an order of magnitude; indeed, this power density and the rapid (dis)charge time are competitive with electrochemical capacitors.
机译:共价有机框架(COF)是锂离子电池的有希望的电极材料。然而,嵌入COF内的氧化还原活性位点的利用通常受到散装材料的低固有电导率的限制,导致电化学性能差。这里,通过将COF与碳纳米管(CNT)集成来改进一般策略以改善COF基电极的能量储存能力。这些COF复合材料具有大量的氧化还原活性2,7-二氨基-9,10-菲醌(DAPQ)的基序,鲁棒β-酮胺键,且定义明确的中孔。通过原位缩聚制备复合材料(DAPQ-COFX-wher of x = wt%),并具有管型芯壳结构,在CNT表面上紧密生长的COF层。这种协同结构设计能够实现卓越的电化学性能:DAPQ-COF50显示氧化还原活性位点的95%,循环稳定性长(在2000 mA g(-1)的3000次循环后76%的保留76%的保留),以及超高速率能力58%的容量保持在50 a g(-1)。该速率转化为近似为11 s(320 c)的充电时间,暗示DAPQ-COF50对高功率电池具有卓越的承诺。此外,速率能力使含羰基的有机电极的所有先前报告占优势,其数量级;实际上,这种功率密度和快速(DIS)充电时间与电化学电容器具有竞争力。

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  • 来源
    《Advanced energy materials》 |2021年第39期|2101880.1-2101880.11|共11页
  • 作者单位

    Univ Liverpool Mat Innovat Factory 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Dept Chem 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Dept Chem Stephenson Inst Renewable Energy Peach St Liverpool L69 7ZD Merseyside England;

    Univ Liverpool Mat Innovat Factory 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Dept Chem 51 Oxford St Oxford L7 3NY Merseyside England;

    Univ Liverpool Dept Chem Stephenson Inst Renewable Energy Peach St Liverpool L69 7ZD Merseyside England;

    Univ Liverpool Albert Crewe Ctr Waterhouse Bldg Block C 1-3 Brownlow St Liverpool L69 3GL Merseyside England;

    Univ Liverpool Mat Innovat Factory 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Dept Chem 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Leverhulme Res Ctr Funct Mat Design Liverpool L69 7ZD Merseyside England;

    Univ Liverpool Mat Innovat Factory 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Dept Chem 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Leverhulme Res Ctr Funct Mat Design Liverpool L69 7ZD Merseyside England;

    Univ Liverpool Mat Innovat Factory 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Dept Chem 51 Oxford St Oxford L7 3NY Merseyside England;

    Univ Liverpool Mat Innovat Factory 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Dept Chem 51 Oxford St Oxford L7 3NY Merseyside England;

    Univ Liverpool Albert Crewe Ctr Waterhouse Bldg Block C 1-3 Brownlow St Liverpool L69 3GL Merseyside England;

    Univ Strathclyde Dept Pure & Appl Chem Thomas Graham Bldg 295 Cathedral St Glasgow G1 1XL Lanark Scotland;

    Univ Liverpool Mat Innovat Factory 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Dept Chem 51 Oxford St Oxford L7 3NY Merseyside England;

    Univ Liverpool Dept Chem Stephenson Inst Renewable Energy Peach St Liverpool L69 7ZD Merseyside England;

    Univ Liverpool Mat Innovat Factory 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Dept Chem 51 Oxford St Oxford L7 3NY Merseyside England|Univ Liverpool Leverhulme Res Ctr Funct Mat Design 51 Oxford St Liverpool L7 3NY Merseyside England;

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

    covalent organic frameworks; Li-ion cells; positive electrode; ultra-high rate performance;

    机译:共价有机框架;锂离子电池;正电极;超高速率性能;

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