用硫基和氧基转换阴极改进可充电锂电池性能的最新策略

Yao Ren, Juntian Fan, Yong Fu
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引用次数: 4

摘要

基于插层电极材料的锂离子电池的能量密度已经达到极限,难以满足日益增长的高能量存储系统的需求。基于转化反应的电极材料,如硫、有机硫化物和氧,涉及化学键的断裂和重组,可以提供更高的比容量和能量密度。此外,它们通常含有丰富的元素,使它们具有可再生性。尽管它们具有上述优点,但在实际应用中仍面临许多挑战。例如,硫和分子有机硫化物的循环产物可溶于液体电解质,导致穿梭效应和显著的容量损失。氧的放电产物是Li2O2,会导致高电荷过电位和电解液的分解。在这篇综述中,我们概述了目前改善锂硫电池、锂有机硫化物电池和锂氧电池性能的策略。首先,我们总结了为克服硫和有机硫化物阴极所面临的问题所做的努力,以及提高有机硫化物容量的策略。然后介绍了锂氧电池催化剂的最新研究进展。最后,对电极材料的转化进行了总结和展望。
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Recent strategies for improving the performances of rechargeable lithium batteries with sulfur- and oxygen-based conversion cathodes
The energy density of lithium-ion batteries based on intercalated electrode materials has reached its upper limit, which makes it challenging to meet the growing demand for high-energy storage systems. Electrode materials based on conversion reactions such as sulfur, organosulfides, and oxygen involving breakage and reformation of chemical bonds can provide higher specific capacity and energy density. In addition, they usually consist of abundant elements, making them renewable. Although they have the aforementioned benefits, they face numerous challenges for practical applications. For example, the cycled products of sulfur and molecular organosulfides could be soluble in a liquid electrolyte, resulting in the shuttle effect and significant capacity loss. The discharged product of oxygen is Li2O2, which could result in high charge overpotential and decomposition of the electrolyte. In this review, we present an overview of the current strategies for improving the performances of lithium-sulfur, lithium-organosulfide, and lithium-oxygen batteries. First, we summarize the efforts to overcome the issues facing sulfur and organosulfide cathodes, as well as the strategies to increase the capacity of organosulfides. Then, we introduce the latest research progress on catalysts in lithium-oxygen batteries. Finally, we summarize and provide outlooks for the conversion of electrode materials.
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