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首页> 外文期刊>Advanced Functional Materials >Re-Engineering Poly(Acrylic Acid) Binder toward Optimized Electrochemical Performance for Silicon Lithium-Ion Batteries: Branching Architecture Leads to Balanced Properties of Polymeric Binders
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Re-Engineering Poly(Acrylic Acid) Binder toward Optimized Electrochemical Performance for Silicon Lithium-Ion Batteries: Branching Architecture Leads to Balanced Properties of Polymeric Binders

机译:重新设计聚(丙烯酸)粘合剂,以优化锂离子电池的电化学性能:分支结构导致聚合物粘合剂的平衡性能

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摘要

Silicon is a promising anode material for lithium-ion batteries with its superior capacity. However, the drastic volume changes during lithiation/delithiation cycles hinder the cycling performance, resulting in particle pulverization, conductivity loss, and an unstable electrode-electrolyte interface. Herein, a series of synthetic polymeric binders, poly(acrylic acid-co-tetra(ethylene glycol) diacrylate)-featuring a poly(acrylic acid) (PAA) backbone branched via tetra(ethylene glycol) diacrylate (TEGDA)-are developed that edge toward evidencing well-balanced properties to confront capacity fading in Si-based electrodes. The incorporation of ether chain not only leads to the branching architecture of the PAA backbone, thus affecting its mechanical properties, but also promotes the conductivity of Li ions. As a result, a synergistic performance improvement is observed in both half and full cells. The best-performing cell using a branched PAA binder (bPAA) with a feeding molar ratio ([TEGDA]:[acrylic acid(AA)]) of 0.2 results in a 10% increase in initial capacity and a 31% increase in capacity retention over 100 cycles compared to the linear PAA cell. The cross-sectional microscopic images of the cycled electrodes reveal that bPAA binders can drastically reduce the electrode expansion. This improvement results from the well-balanced properties of the polymer design, which could guide further development for more advanced binder materials.
机译:硅具有出色的容量,是锂离子电池的有希望的负极材料。然而,在锂化/去锂化循环期间急剧的体积变化阻碍了循环性能,导致颗粒粉碎,电导率损失以及不稳定的电极-电解质界面。在此,开发了一系列合成聚合物粘合剂,即具有通过二丙烯酸四乙二醇酯(TEGDA)分支的聚丙烯酸(PAA)主链的聚丙烯酸-丙烯酸四(乙二醇二乙酯)共聚物。证明平衡性能良好,以应对硅基电极的容量衰减。醚链的引入不仅导致PAA主链的分支结构,从而影响其机械性能,而且还促进了Li离子的电导率。结果,在半电池和全电池中都观察到协同性能的提高。使用支链PAA粘合剂(bPAA)且进料摩尔比([TEGDA]:[丙烯酸(AA)])为0.2的最佳电池将使初始容量增加10%,容量保持率增加31%与线性PAA电池相比,周期超过100个周期。循环电极的横截面显微图像显示,bPAA粘合剂可大大减少电极膨胀。这种改进来自聚合物设计的良好平衡特性,可以指导更高级粘合剂材料的进一步开发。

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  • 来源
    《Advanced Functional Materials》 |2020年第10期|1908558.1-1908558.9|共9页
  • 作者

  • 作者单位

    Argonne Natl Lab Chem Sci & Engn Div 9700 South Cass Ave Argonne IL 60439 USA;

    Argonne Natl Lab Inst Mol Engn 9700 South Cass Ave Argonne IL 60439 USA|Argonne Natl Lab Div Mat Sci 9700 South Cass Ave Argonne IL 60439 USA|Univ Chicago Inst Mol Engn 5640 South Ellis Ave Chicago IL 60637 USA;

    Argonne Natl Lab Chem Sci & Engn Div 9700 South Cass Ave Argonne IL 60439 USA|Joint Ctr Energy Storage Res 9700 South Cass Ave Argonne IL 60439 USA;

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

    branched PAA; lithium-ion batteries; polymer binder; silicon anode;

    机译:分支PAA;锂离子电池;聚合物粘合剂硅阳极;

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