Liang Liping, Li Jiancheng, Zhu Mingyuan, Li Ying, Chou Shulei, Li Wenxian
Institute of Materials/Institute for Sustainable Energy, Shanghai University, Shanghai, 200444, China.
Institute for Superconducting and Electronic Materials, Australian Institute of Innovative Materials, University of Wollongong, Innovation Campus, Squires Way, North Wollongong, New South Wales, 2500, Australia.
Small. 2021 Mar;17(9):e1903418. doi: 10.1002/smll.201903418. Epub 2019 Nov 29.
Lithium-ion batteries (LIBs) are widely used in electric vehicles and portable electronic devices due to their high energy density, long cycle life, environmental friendliness, and negligible memory effect, though they also suffer from low power density, safety issues, and an aging effect. Cobalt chalcogenides/phosphides as promising anode materials have attracted intensive interests due to their high theoretical capacity based on the conversion mechanism. Cobaltates (XCo O , X = the other metal) have attracted attention because the X element can partially replace the high cost and toxic cobalt element. The serious volume variation during the cycling process has an impact, however, on the lithiation environment of above materials. Hierarchical construction can provide more active sites and shorten the diffusion pathways of Li ions as well as accommodating the volume expansion during lithiation processes. Herein, the research progress on the synthesis methods, structural characteristics, and electrochemical performances of cobalt chalcogenides/cobalt phosphides/cobaltates with hierarchical nanostructures for LIBs is presented. The concluding remarks highlight the research challenges and possible development directions of cobalt chalcogenides/cobalt phosphides/cobaltates with tailored hierarchical nanostructures for LIBs.
锂离子电池(LIBs)因其高能量密度、长循环寿命、环境友好性和可忽略不计的记忆效应而被广泛应用于电动汽车和便携式电子设备中,尽管它们也存在低功率密度、安全问题和老化效应。基于转换机制,钴硫属化合物/磷化物作为有前景的负极材料因其高理论容量而引起了广泛关注。钴酸盐(XCoO,X = 其他金属)也受到了关注,因为X元素可以部分替代高成本且有毒的钴元素。然而,循环过程中严重的体积变化会对上述材料的锂化环境产生影响。分级结构可以提供更多的活性位点,缩短锂离子的扩散路径,并在锂化过程中容纳体积膨胀。在此,本文介绍了用于LIBs的具有分级纳米结构的钴硫属化合物/钴磷化物/钴酸盐在合成方法、结构特征和电化学性能方面的研究进展。结论部分强调了具有定制分级纳米结构的钴硫属化合物/钴磷化物/钴酸盐在LIBs应用中的研究挑战和可能的发展方向。