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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Solid Electrolyte Interphase Revealing Interfacial Electrochemistry on Highly Oriented Pyrolytic Graphite in a Water-in-Salt Electrolyte
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Solid Electrolyte Interphase Revealing Interfacial Electrochemistry on Highly Oriented Pyrolytic Graphite in a Water-in-Salt Electrolyte

机译:固体电解质间界面在水 - 盐电解质中揭示界面电化学在高温热解石墨上

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We present a fundamental study of solid-electrolyte interphase (SEI) layers toward a better understanding of interfacial electrochemistry. In particular, water-in-salt electrolytes yield SEIs with a simple composition that describes the electrolyte-electrode interface explicitly. The 21 m lithium bis(trifluoromethanesulfonyl)imide formed a porous SEI film on a highly oriented pyrolytic graphite (HOPG) electrode at -2 V (vs Ag/AgCl). The significant hydrogen evolution reaction (HER) made holes in a thin SEI film and defect sites in the HOPG. In addition, the SEI comprised fragmented TFSI without including any Li compounds. We suggested that fragments of TFSI- were precipitated out by the addition of the hydrogen atoms, which were yielded through the Volmer step and detached from the HOPG surface before HER. Subsequently, a nonporous and LiOH-rich film was formed by -4 V. The OH- and Li+ ions were enriched during the continuous HER, and their chemical reaction produced a thick film and nanoneedles. However, there was no evidence of Li+ intercalation into graphitic layers of the HOPG, presumably caused by sluggish Li+-ion transport in the Li-deficient SEI layer. This study shows variable interfacial reactions over a wide range of applied potential and the HER impact on SEI films associated with the performance of aqueous Li-ion batteries.
机译:我们展示了一种对界面电化学的更好理解的基础研究。特别地,水 - 盐水解电解液通过简单的组合物产生明确描述电解质电极界面的简单组合物。 21M锂双(三氟甲磺酰基)酰亚胺在-2V(Vs Ag / AgCl)的高度取向的热解石墨(Hopg)电极上形成多孔SEI膜。显着的氢化反应(她)在悬浮液中薄的SEI膜和缺陷部位孔制成孔。此外,SEI包含碎裂的TFSI,而不包括任何Li化合物。我们建议通过加入氢原子来沉淀TFSI的片段,该氢原子通过Volmer步骤产生,并在她之前从Hopg表面脱离。随后,通过-4V -4 V形成无孔和LiOH的薄膜。在连续的情况下,富含OH-和Li +离子,并且它们的化学反应产生厚膜和纳米。然而,没有证据表明Li +嵌入到Hopg的石墨层中,可能是由Li缺陷的SEI层中的Li + --ion运输缓慢引起的。该研究显示出在广泛的应用潜力和她对与锂离子电池的性能相关的SEI膜的影响的可变界面反应。

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