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Advances in sodium secondary batteries utilizing ionic liquid electrolytes

机译:利用离子液体电解质的钠二次电池的研究进展

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摘要

The development of Na secondary batteries that exhibit both sustainability and high energy density as potential successors to lithium-ion batteries for certain large-scale applications has received considerable research interest in recent years. However, although the importance of the electrolyte in such systems has long been largely overlooked, it is becoming increasingly recognized as a key consideration (along with the electrode material) for the non-incremental improvement of Na secondary batteries. Among the candidate electrolytes in this context, ionic liquids (ILs), which are liquids consisting entirely of ions, offer many unique advantages. In this review, the fundamental properties of ILs and the design strategies employed to facilitate their application in batteries are introduced. Comprehensive summaries of the recent advances in the development of positive and negative electrode materials for Na secondary batteries are then presented. Most of the IL-based systems discussed exhibit remarkably enhanced performances compared to those of batteries based on conventional electrolytes. Furthermore, reversible capacity, rate capability, recyclability, and coulombic efficiency are synergistically enhanced by combining IL electrolytes and elevated temperature conditions. Finally, the practical prospects and future challenges associated with the development of electrode materials fabricated from cheap, abundant elements; the efficient utilisation of Na metal as a negative electrode material; and considerations related to the solid-electrolyte interphase are also discussed.
机译:近年来,具有可持续性和高能量密度的Na二次电池的发展成为锂离子电池在某些大规模应用中的潜在继任者。然而,尽管长期以来在很大程度上忽略了电解质在此类系统中的重要性,但是,电解质的重要性已被越来越多地视为(与电极材料一起)对Na二次电池进行非增量改进的关键考虑因素。在这种情况下的候选电解质中,离子液体(ILs)是完全由离子组成的液体,具有许多独特的优势。在这篇综述中,介绍了IL的基本特性以及为促进其在电池中的应用而采用的设计策略。然后介绍了用于Na二次电池的正极和负极材料的最新进展的综合摘要。与基于常规电解质的电池相比,所讨论的大多数基于IL的系统均表现出显着增强的性能。此外,通过组合IL电解质和高温条件,可协同提高了可逆容量,速率能力,可回收性和库仑效率。最后,与开发由廉价,丰富的元素制成的电极材料相关的实际前景和未来挑战;有效利用金属钠作为负极材料;并讨论了与固体电解质界面有关的注意事项。

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  • 来源
    《Energy & environmental science》 |2019年第11期|3247-3287|共41页
  • 作者单位

    Kyoto Univ Grad Sch Energy Sci Sakyo Ku Kyoto 6068501 Japan|Kyoto Univ Natl Inst Adv Ind Sci & Technol Chem Energy Mat Open Innovat Lab ChEM OIL AIST Sakyo Ku Kyoto 6068501 Japan|Kyoto Univ Unit Elements Strategy Initiat Catalysts & Batter Kyoto 6158510 Japan;

    Kyoto Univ Grad Sch Energy Sci Sakyo Ku Kyoto 6068501 Japan;

    Kyoto Univ Natl Inst Adv Ind Sci & Technol Chem Energy Mat Open Innovat Lab ChEM OIL AIST Sakyo Ku Kyoto 6068501 Japan;

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  • 正文语种 eng
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  • 入库时间 2022-08-18 04:53:57

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