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用于钠离子电池负极的硬碳材料:合成策略、材料性能和存储机制。

Hard Carbons for Sodium-Ion Battery Anodes: Synthetic Strategies, Material Properties, and Storage Mechanisms.

机构信息

Department of Physics and Centre for Energy Science, Indian Institute of Science Education and Research (IISER) Pune, Dr. Homi Bhabha Rd., Pashan, Pune, 411 008, India.

Department of Chemistry, Indian Institute of Science Education and Research (IISER) Pune, Dr. Homi Bhabha Rd., Pashan, Pune, 411 008, India.

出版信息

ChemSusChem. 2018 Feb 9;11(3):506-526. doi: 10.1002/cssc.201701664. Epub 2018 Jan 26.

Abstract

Sodium-ion batteries are attracting much interest due to their potential as viable future alternatives for lithium-ion batteries, in view of the much higher earth abundance of sodium over that of lithium. Although both battery systems have basically similar chemistries, the key celebrated negative electrode in lithium battery, namely, graphite, is unavailable for the sodium-ion battery due to the larger size of the sodium ion. This need is satisfied by "hard carbon", which can internalize the larger sodium ion and has desirable electrochemical properties. Unlike graphite, with its specific layered structure, however, hard carbon occurs in diverse microstructural states. Herein, the relationships between precursor choices, synthetic protocols, microstructural states, and performance features of hard carbon forms in the context of sodium-ion battery applications are elucidated. Derived from the pertinent literature employing classical and modern structural characterization techniques, various issues related to microstructure, morphology, defects, and heteroatom doping are discussed. Finally, an outlook is presented to suggest emerging research directions.

摘要

钠离子电池由于其作为锂离子电池未来可行替代品的潜力而备受关注,考虑到钠在地壳中的丰度远远高于锂。尽管这两种电池系统具有基本相似的化学性质,但在锂电池中关键的负极材料石墨,由于钠离子的尺寸较大,在钠离子电池中是不可用的。这种需求由“硬碳”来满足,硬碳可以容纳较大的钠离子,并具有理想的电化学性能。然而,与具有特定层状结构的石墨不同,硬碳存在于不同的微观结构状态。在此,阐述了钠离子电池应用中硬碳形式的前体选择、合成方案、微观结构状态和性能特征之间的关系。从采用经典和现代结构表征技术的相关文献中,讨论了与微观结构、形态、缺陷和杂原子掺杂相关的各种问题。最后,提出了展望,以建议新兴的研究方向。

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