水性可充电铝金属电池的研究进展

Xiaotian Wang, Zihang Xi, Qing Zhao
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摘要

水性可充电铝金属电池(ARAMBs)具有能量密度高、成本效益高和安全性高的优点。然而,铝阳极与电解液之间的寄生反应、铝阳极的低速动力学和低可逆性,以及 Al3+ 离子的高电荷密度导致的结构不稳定性,导致 ARAMBs 的循环寿命短、高倍率性能差。在这篇综述中,我们总结了 ARAMB 的研究进展,强调了已报道的解决上述棘手问题的策略。首先,我们讨论了如何调节铝阳极和间相以加速铝剥离动力学,主要包括离子液体类似物衍生的固体电解质间相(SEIs)、人工界面功能层和铝合金等策略。随后,我们重点介绍了电解质改性方法,包括制备高浓度单盐/双盐电解质和设计电解质添加剂以减少 ARAMBs 的寄生反应。最后,我们介绍了制造阴极的进展,如钒基材料、锰氧化物材料、钼基材料、普鲁士蓝类似物、碳材料和可容纳 Al3+ 离子的有机材料。我们建议,ARAMBs 的进一步发展需要上述策略的配合,以提高其整体电化学性能,并开发新的方法来说明电池的反应机制。
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Progress on aqueous rechargeable aluminium metal batteries
Aqueous rechargeable aluminium metal batteries (ARAMBs) have advantages of high energy density, cost efficiency and reasonable safety. However, parasitic reactions between the Al anode and electrolyte, sluggish dynamics and low reversibility of the Al anode, and structural instability caused by the high charge density of Al3+ ions lead to a short cycling life and inferior high-rate performance in ARAMBs. Herein, in this review, we summarize the research progress on ARAMBs by emphasizing the reported strategies to address the above-mentioned intractable issues. Initially, we discuss how to regulate the Al anode and interphase to accelerate the kinetics of Al stripping, which mainly includes strategies of ionic liquid analogue-derived solid electrolyte interphases (SEIs), artificial interfacial functional layer and aluminium alloy. Subsequently, the electrolyte modification approaches are highlighted including preparing highly concentrated single-salt/bi-salt electrolytes and designing electrolyte additives to reduce the parasitic reactions of ARAMBs. Finally, we introduce the progress on fabricating cathodes, such as vanadium-based materials, manganese-oxide materials, molybdenum-based materials, Prussian blue analogues, carbon materials, and organic materials to accommodate Al3+ ions. We propose that the further development of ARAMBs requires the cooperation of the above-mentioned strategies to improve their overall electrochemical performance and the development of new methods to illustrate the reaction mechanism of batteries.
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Industrial Chemistry & Materials
Industrial Chemistry & Materials chemistry, chemical engineering, functional materials, energy, etc.-
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期刊介绍: Industrial Chemistry & Materials (ICM) publishes significant innovative research and major technological breakthroughs in all aspects of industrial chemistry and materials, with a particular focus on the important innovation of low-carbon chemical industry, energy and functional materials. By bringing researchers, engineers, and policymakers into one place, research is inspired, challenges are solved and the applications of science and technology are accelerated. The global editorial and advisory board members are valued experts in the community. With their support, the rigorous editorial practices and dissemination ensures your research is accessible and discoverable on a global scale. Industrial Chemistry & Materials publishes: ● Communications ● Full papers ● Minireviews ● Reviews ● Perspectives ● Comments
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