Insights into the electrochemical performance of metal fluoride cathodes for lithium batteries

Delong Ma, Ruili Zhang, Xun-shi Hu, Yang Chen, Chen Xiao, Fei He, Shu Zhang, Jianbing Chen, G. Hu
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引用次数: 3

Abstract

In recent years, energy storage and conversion have become key areas of research to address social and environmental issues, as well as practical applications, such as increasing the storage capacity of portable electronic storage devices. However, current commercial lithium-ion batteries suffer from low specific energy and high cost and toxicity. Conversion-type cathode materials are promising candidates for next-generation Li metal and Li-ion batteries (LIBs). Metal fluoride materials have shown tremendous chemical tailorability and exhibit excellent energy density in LIBs. Batteries based on such electrodes can compete with other envisaged alternatives, such as Li-air and Li-S systems. However, conversion reactions are typically multiphase redox reactions with mass transport phenomena and nucleation and growth processes of new phases along with interfacial reactions. Therefore, these reactions involve nonequilibrium reaction pathways and significant overpotentials during the charge-discharge process. In this review, we summarize the key challenges facing metal fluoride cathode materials and general strategies to overcome them in cells. Different synthesis methods of metal fluorides are also presented and discussed in the context of their application as cathode materials in Li and LIBs. Finally, the current challenges and future opportunities of metal fluorides as electrode materials are emphasized. With continuous rapid improvements in the electrochemical performance of metal fluorides, it is believed that these materials will be used extensively for energy storage in Li batteries in the future.
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锂电池金属氟化物阴极的电化学性能研究
近年来,能量存储和转换已成为解决社会和环境问题以及实际应用的关键研究领域,例如增加便携式电子存储设备的存储容量。然而,目前商用锂离子电池存在比能低、成本高和毒性大的问题。转换型正极材料是下一代锂金属和锂离子电池(LIBs)的有前途的候选者。金属氟化物材料在lib中表现出巨大的化学可定制性和优异的能量密度。基于这种电极的电池可以与其他设想的替代方案竞争,如Li-air和Li-S系统。然而,转化反应是典型的多相氧化还原反应,伴随着质量传递现象和新相的成核和生长过程以及界面反应。因此,这些反应在充放电过程中涉及非平衡反应途径和显著的过电位。本文综述了金属氟化阴极材料在电池中面临的主要挑战和克服这些挑战的一般策略。介绍了金属氟化物的不同合成方法,并对其作为锂离子电池和锂离子电池正极材料的应用进行了讨论。最后,强调了金属氟化物作为电极材料目前面临的挑战和未来的机遇。随着金属氟化物电化学性能的不断快速提高,相信未来这些材料将广泛用于锂电池的储能。
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