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Recent advances in the mitigation of dendrites in lithium-metal batteries

机译:锂金属电池中树突减轻的最新进展

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Utilizing lithium (Li) metal as the anode can enable lithium metal battery (LMB) systems to achieve energy densities of up to 1150 Wh Kg~(-1), approaching that of gasoline. However, the use of Li metal is plagued with a whole host of problems, the most serious of which is the issue of nucleation of Li metal dendrites. These dendrites grow inexorably on charge-discharge cycling, piercing through the battery separator membrane and eventually electrically shorting the battery. This can result in thermal runaway leading to an unacceptable fire hazard. In this review article, we focus on recent advances in mitigating, suppressing, and healing Li metal dendrites in LMBs with liquid electrolytes. We discuss a whole host of exciting approaches including electrolyte engineering, interface engineering, the use of stable Li hosts, homogenizing Li-ion flux, and the physical healing of dendrites using temperature fields. We discuss the pros and cons of these approaches and provide our perspectives for future research directions. In particular, it is important to consider dendrite mitigation in a full-cell setting and with a realistic form factor such as prismatic or cylindrical cells. Given the multifaceted nature of the dendrite challenge, it is unlikely that there is a single magic solution, making it necessary to explore a combination of strategies to work in synergy to make Li metal anodes viable in commercial systems.
机译:利用锂(Li)金属作为阳极可以使锂金属电池(LMB)系统实现高达1150WH kg〜(-1)的能量密度,接近汽油。然而,利用李金属困扰着一系列问题,最严重的是李金属树突核的问题。这些树突在充电放电循环上不可易于生长,穿过电池分离器膜刺穿并最终电动缩短电池。这可能导致热失控导致不可接受的火灾危险。在本综述文章中,我们专注于液体电解质在LMB中减轻,抑制和治愈李金属树枝状的最新进展。我们讨论了一系列令人兴奋的方法,包括电解质工程,界面工程,使用稳定的Li宿主,均质锂离子通量,以及使用温度场的枝晶的物理愈合。我们讨论了这些方法的利弊,并为未来的研究方向提供了我们的观点。特别地,重要的是要考虑全细胞设置中的树突缓解,并且具有诸如棱柱形或圆柱形电池的现实形状因素。鉴于树突挑战的多方面性质,有必要有一种魔法解决方案,使得有必要探索在协同作用中工作的策略组合,以使李金属阳极在商业系统中可行。

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  • 来源
    《Journal of Applied Physics 》 |2020年第1期| 010903.1-010903.12| 共12页
  • 作者单位

    Department of Mechanical Aerospace and Nuclear Engineering Rensselaer Polytechnic Institute 110 8th Street Troy New York 12180 USA;

    Department of Mechanical Aerospace and Nuclear Engineering Rensselaer Polytechnic Institute 110 8th Street Troy New York 12180 USA;

    Department of Mechanical Aerospace and Nuclear Engineering Rensselaer Polytechnic Institute 110 8th Street Troy New York 12180 USA;

    Department of Mechanical Aerospace and Nuclear Engineering Rensselaer Polytechnic Institute 110 8th Street Troy New York 12180 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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