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Suppressing the Shuttle Effect and Dendrite Growth in Lithium–Sulfur Batteries

机译:抑制锂 - 硫电池中的梭效果和树突生长

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摘要

Practical applications of lithium–sulfur batteries are simultaneously hindered by two serious problems occurring separately in both electrodes, namely, the shuttle effects of lithium polysulfides and the uncontrollable growth of lithium dendrites. Herein, to explore a facile integrated approach to tackle both problems as well as guarantee the efficient charge transfer, we used two-dimension hexagonal VS_(2) flakes as the building blocks to assemble nanotowers on the separators, forming a symmetrical double-side-modified polypropylene separator without blocking the membrane pores. Benefiting from the “sulfiphilic” and “lithiophilic” properties, high interfacial electronic conductivity, and the unique hexagonal tower-form nanostructure, the [email?protected] separator not only guarantees the effective suppression of the lithium polysulfide shuttle and the rapid ion/electron transfer but also realizes uniform and stable lithium nucleation and growth during cycling. Hence, just at the expense of an 11% increase in the separator weight (0.14 mg cm~(–2)), the [email?protected] separator delivers an over 16 times higher initial areal capacity (8.3 mAh cm~(–2)) than a conventional PP separator (0.5 mAh cm~(–2)) under high sulfur-loading conditions (9.24 mg cm~(–2)). Even when used under a low electrolyte/sulfur ratio of 4 mL g~(–1) and a practically relevant N/P ratio of 1.7, the [email?protected] separator still enabled stable cycling with a high cell-level gravimetric energy density. The potentials in broader applications (Li–S pouch battery and Li–LiFePO_(4) battery) and the promising commercial prospect (large-scale production and recyclability) of the developed separator are also demonstrated.
机译:锂 - 硫电池的实际应用同时阻碍了两个电极中分别发生的两个严重问题,即锂多硫化物的梭效果和锂枝晶锂的无法控制的生长。在此,探讨了解解决问题的容易的综合方法以及保证有效的电荷转移,我们使用了两维六角形VS_(2)片作为构建块来组装隔板上的纳米管,形成对称的双面 - 改性聚丙烯分离器而不阻挡膜孔。受益于“硫酸”和“锂碘硅”性质,高界面电子电导率和独特的六边形塔形纳米结构,[邮箱吗?受保护的]分离器不仅保证锂多硫化物梭和快速离子/电子的有效抑制转移,但也意识到循环期间均匀且稳定的锂核切割和生长。因此,仅在分离器重量增加11%(0.14mg cm〜(-2))的费用,[电子邮件吗?受保护的]分离器提供超过16倍的初始面积容量(8.3 mah cm〜(-2 ))在高硫加载条件下(9.24mg cm〜(-2)),比传统的PP分离器(0.5mAhcm〜(-2)))。即使在低电解液/硫比为4ml g〜(-1)和实际相关的n / p比为1.7时使用,即[email yougnted]分离器仍然能够稳定循环,具有高电池级重量能量密度。还证明了更广泛应用(Li-S袋电池和Li-Lifepo_(4)电池)和发达分离器的有前途的商业前景(大规模生产和再循环性)的潜力。

著录项

  • 来源
    《ACS nano》 |2020年第8期|共13页
  • 作者单位

    Department of Environmental Science and Engineering Department of Applied Chemistry School of Chemistry MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter State Key Laboratory for Electrical Insulation and Power Equipme;

    Department of Environmental Science and Engineering Department of Applied Chemistry School of Chemistry MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter State Key Laboratory for Electrical Insulation and Power Equipme;

    Department of Environmental Science and Engineering Department of Applied Chemistry School of Chemistry MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter State Key Laboratory for Electrical Insulation and Power Equipme;

    Department of Environmental Science and Engineering Department of Applied Chemistry School of Chemistry MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter State Key Laboratory for Electrical Insulation and Power Equipme;

    Department of Environmental Science and Engineering Department of Applied Chemistry School of Chemistry MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter State Key Laboratory for Electrical Insulation and Power Equipme;

    Department of Environmental Science and Engineering Department of Applied Chemistry School of Chemistry MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter State Key Laboratory for Electrical Insulation and Power Equipme;

    Department of Engineering University of Cambridge;

    Department of Environmental Science and Engineering Department of Applied Chemistry School of Chemistry MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter State Key Laboratory for Electrical Insulation and Power Equipme;

    Faculty of Science and Technology Bournemouth University Talbot Campus Fern Barrow;

    Department of Environmental Science and Engineering Department of Applied Chemistry School of Chemistry MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter State Key Laboratory for Electrical Insulation and Power Equipme;

    Department of Environmental Science and Engineering Department of Applied Chemistry School of Chemistry MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter State Key Laboratory for Electrical Insulation and Power Equipme;

    Department of Materials Science and Metallurgy University of Cambridge;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;
  • 关键词

    lithium?sulfur batteries; amphiphilic; separator; lithium dendrites; recyclable; shuttle effect;

    机译:锂·硫磺电池;两亲;分离器;锂枝晶;可回收;梭效果;

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