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Enhanced electrochemical performances of coal liquefaction residue derived hard carbon coated by graphene as anode materials for sodium-ion batteries

机译:增强煤液液化残留物的电化学性能衍生石墨烯涂覆的硬碳作为钠离子电池的阳极材料

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摘要

A graphene coated coal liquefaction residue (CLR) derived hard carbon (HC@G) composite anode for sodium ion batteries was prepared by thermal annealing the mixture of the chemically modified hard carbon with graphene oxide. The irregular shaped hard carbon particles were coated uniformly by wrinkled graphene sheets. Both HC and HC@G possess large inter-layer spacing and poor porosity, but a richer pore structure that facilitating ion transport was generated after graphene coating. Because poor conductive hard carbon particles are bridged by graphene sheets, a better conductivity of HC@G is detected by voltammetry test and the EIS analysis. Graphene coating contributes little to the sodium storage capacity. However, HC@G exhibits a much better rate performance and a dramatic improvement of cycling capability with the capacity retention 83% after 2000 cycles at a high current density of 2 A.g(-1). The impressing rate and cycle performances of HC@G anode are attributed to the hierarchical structure with rich ion diffusion channels and extensive electronic conduction path.
机译:通过热退火与石墨烯的混合物,制备石墨烯涂覆的煤液液化残基(CLR)衍生的硬碳(HC @ G)复合阳极。不规则的硬碳颗粒通过皱的石墨烯片均匀涂覆。 HC和HC @ G都具有大的层间间距和缺陷率差,但在石墨烯涂层后产生促进离子传输的富孔结构。因为通过石墨烯片桥接差的导电硬碳颗粒,所以通过伏安试验和EIS分析检测HC @ G的更好的导电性。石墨烯涂料略微达到钠储存能力。然而,HC @ G表现出更好的速率性能和循环能力的显着提高,并且在2000次循环的高电流密度为2A.g(-1)后的容量保持83%。 HC @ G阳极的印象率和循环性能归因于具有富离子扩散通道和广泛的电子传导路径的层级结构。

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