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The Role of Interlayer Chemistry in Li-Metal Growth through a Garnet-Type Solid Electrolyte

机译:中间层化学在石榴石型固体电解质中锂金属生长中的作用

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摘要

Securing the chemical and physical stabilities of electrode/solid-electrolyte interfaces is crucial for the use of solid electrolytes in all-solid-state batteries. Directly probing these interfaces during electrochemical reactions would significantly enrich the mechanistic understanding and inspire potential solutions for their regulation. Herein, the electrochemistry of the lithium/Li7La3Zr2O12-electrolyte interface is elucidated by probing lithium deposition through the electrolyte in an anode-free solid-state battery in real time. Lithium plating is strongly affected by the geometry of the garnet-type Li7La3Zr2O12 (LLZO) surface, where nonuniform/filamentary growth is triggered particularly at morphological defects. More importantly, lithium-growth behavior significantly changes when the LLZO surface is modified with an artificial interlayer to produce regulated lithium depositions. It is shown that lithium-growth kinetics critically depend on the nature of the interlayer species, leading to distinct lithium-deposition morphologies. Subsequently, the dynamic role of the interlayer in battery operation is discussed as a buffer and seed layer for lithium redistribution and precipitation, respectively, in tailoring lithium deposition. These findings broaden the understanding of the electrochemical lithium-plating process at the solid-electrolyte/lithium interface, highlight the importance of exploring various interlayers as a new avenue for regulating the lithium-metal anode, and also offer insight into the nature of lithium growth in anode-free solid-state batteries.
机译:确保电极/固体电解质界面的化学和物理稳定性对于在全固态电池中使用固体电解质至关重要。在电化学反应过程中直接探测这些界面将极大地丰富机理的理解,并为调节它们提供潜在的解决方案。在此,通过实时探测无阳极固态电池中通过电解质的锂沉积,来阐明锂/ Li7La3Zr2O12-电解质界面的电化学。石榴石型Li7La3Zr2O12(LLZO)表面的几何形状极大地影响了镀锂,特别是在形态缺陷时,会触发不均匀/丝状生长。更重要的是,当用人造夹层修饰LLZO表面以产生可调节的锂沉积时,锂的生长行为会发生显着变化。结果表明,锂的生长动力学关键取决于中间层物种的性质,从而导致不同的锂沉积形态。随后,讨论了中间层在电池运行中的动态作用,分别作为缓冲层和种子层,用于锂的重新分配和沉淀,以适应锂的沉积。这些发现拓宽了对固体电解质/锂界面上电化学锂电镀工艺的理解,突出了探索各种中间层作为调节锂金属阳极的新途径的重要性,并且还提供了对锂生长性质的洞察力。在无阳极固态电池中。

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  • 来源
    《Advanced energy materials 》 |2020年第12期| 1903993.1-1903993.11| 共11页
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  • 作者单位

    Seoul Natl Univ RIAM Dept Mat Sci & Engn 1 Gwanak Ro Seoul 151742 South Korea|Samsung Adv Inst Technol Next Generat Battery Lab 130 Samsung Ro Suwon 443803 Gyeonggi Do South Korea;

    Samsung Adv Inst Technol Analyt Engn Grp 130 Samsung Ro Suwon 443803 Gyeonggi Do South Korea;

    Samsung Adv Inst Technol Next Generat Battery Lab 130 Samsung Ro Suwon 443803 Gyeonggi Do South Korea;

    Samsung Res Amer 3 Van de Graaff Dr Burlington MA 01803 USA|Lockheed Martin Adv Energy Syst 61 Moulton St Cambridge MA 02138 USA;

    Seoul Natl Univ RIAM Dept Mat Sci & Engn 1 Gwanak Ro Seoul 151742 South Korea;

    Corning Inc Corning NY 14831 USA;

    Seoul Natl Univ RIAM Dept Mat Sci & Engn 1 Gwanak Ro Seoul 151742 South Korea|Seoul Natl Univ Coll Engn Inst Engn Res 1 Gwanak Ro Seoul 151742 South Korea|Seoul Natl Univ IBS Ctr Nanoparticle Res 1 Gwanak Ro Seoul 151742 South Korea;

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  • 正文语种 eng
  • 中图分类
  • 关键词

    garnet solid electrolytes; in operando observation; interlayers; Li-metal growth; Li-metal; garnet electrolyte interface;

    机译:石榴石固体电解质;在手术观察中中间层锂金属的生长;锂金属;石榴石电解质界面;

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