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非水可充电钙电池的阴极材料。

Cathode materials for non-aqueous calcium rechargeable batteries.

作者信息

Hua Yingkai, Ma Yiyuan, Qi Qi, Xu Zheng-Long

机构信息

State Key Laboratory of Ultraprecision Machining Technology, Department of Industrial and Systems Engineering, The Hong Kong Polytechnic University, Hung Hom, Hong Kong, P.R. China.

Research Institute for Advanced Manufacturing, The Hong Kong Polytechnic University, Hung Hom, Hong Kong, P.R. China.

出版信息

Nanoscale. 2024 Oct 3;16(38):17683-17698. doi: 10.1039/d4nr02966f.

Abstract

Calcium rechargeable batteries based on divalent charge carriers have the potential to meet the future demands for large-scale energy storage applications, due to the crustal abundance of Ca element and the high capacity and high safety of Ca metal anodes. The discernible progress in electrolyte and anode materials has put calcium battery technology a step closer to practice. However, the pursuit of high-voltage, high-capacity and stable cathode materials had been formidable because of the sluggish ion migration kinetics and the instability of host lattices during Ca insertion and extraction. Unlocking the potential of Ca rechargeable batteries particularly hinges on the strategic identification of high-performance cathode materials. Herein, this review summarizes the representative strategies to develop novel cathode materials that allow reversible accommodation of Ca ions for high energy output. The cathode materials can be classified into intercalation-type (layered structure, polyanionic compounds, and Prussian blue analogues) and conversion-type (organic materials, sulfur, and oxygen). The scrutinization of their performances and drawbacks sheds light on the current stage of cathode material advancement and provides informative suggestions for future studies to develop advanced calcium rechargeable batteries with competitive performance.

摘要

基于二价电荷载体的钙可充电电池,由于钙元素在地壳中的丰富含量以及钙金属负极的高容量和高安全性,有潜力满足未来大规模储能应用的需求。电解质和负极材料方面取得的显著进展使钙电池技术向实际应用迈进了一步。然而,由于离子迁移动力学缓慢以及在钙嵌入和脱出过程中主体晶格的不稳定性,开发高电压、高容量且稳定的正极材料一直面临巨大挑战。释放钙可充电电池的潜力尤其取决于高性能正极材料的战略识别。在此,本综述总结了开发新型正极材料的代表性策略,这些材料能够可逆地容纳钙离子以实现高能量输出。正极材料可分为插层型(层状结构、聚阴离子化合物和普鲁士蓝类似物)和转换型(有机材料、硫和氧)。对它们的性能和缺点进行审视,有助于了解正极材料发展的当前阶段,并为未来开发具有竞争性能的先进钙可充电电池的研究提供有益建议。

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