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首页> 外文期刊>Advanced Materials >In Situ Solid Electrolyte Interphase from Spray Quenching on Molten Li: A New Way to Construct High-Performance Lithium-Metal Anodes
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In Situ Solid Electrolyte Interphase from Spray Quenching on Molten Li: A New Way to Construct High-Performance Lithium-Metal Anodes

机译:熔融锂喷涂淬火的原位固体电解质中间相:构建高性能锂金属阳极的新方法

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摘要

Uncontrollable growth of Li dendrites and low utilization of active Li severely hinder its practical application. Construction of an artificial solid electrolyte interphase (SEI) on Li is demonstrated as one of the most effective ways to circumvent the above problems. Herein, a novel spray quenching method is developed in situ to fabricate an organic-inorganic composite SEI on Li metal. By spray quenching molten Li in a modified ether-based solution, a homogeneous and dense SEI consisting of organic matrix embedded with inorganic LiF and Li3N nanocrystallines (denoted as OIFN) is constructed on Li metal. Arising from high ionic conductivity and strong mechanical stability, the OIFN can not only effectively minimize the corrosion reaction of Li, but also greatly suppresses the dendrite growth. Accordingly, the OIFN-Li anode presents prominent electrochemical performance with an enhanced Coulombic efficiency of 98.15% for 200 cycles and a small hysteresis of 450 mV even at ultrahigh current density up to 10 mA cm(-2). More importantly, during the full cell test with limited Li source, a high utilization of Li up to 40.5% is achieved for the OIFN-Li anode. The work provides a brand-new route to fabricate advanced SEI on alkali metal for high-performance alkali-metal batteries.
机译:Li树枝状晶体的不可控制的生长和活性Li的低利用率严重阻碍了其实际应用。事实证明,在Li上构建人工固体电解质中间相(SEI)是解决上述问题的最有效方法之一。在这里,一种新的喷雾淬火方法被原位开发以在Li金属上制造有机-无机复合材料SEI。通过在改性的基于醚的溶液中喷雾淬灭熔融的Li,可以在Li金属上构建均匀且致密的SEI,该SEI由嵌入无机LiF和Li3N纳米晶体(表示为OIFN)的有机基质组成。由于高离子电导率和强机械稳定性,OIFN不仅可以有效地减少Li的腐蚀反应,而且可以极大地抑制枝晶的生长。因此,即使在高达10 mA cm(-2)的超高电流密度下,OIFN-Li阳极也具有出色的电化学性能,在200个循环中库伦效率提高了98.15%,滞后小于<450 mV。更重要的是,在使用有限的锂源进行全电池测试期间,对于OIFN-Li阳极,Li的利用率高达40.5%。这项工作为在高性能碱金属电池的碱金属上制造高级SEI提供了一条全新的途径。

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