Mesoporous RGO/NiCo2O4@carbon composite nanofibers derived from metal-organic framework compounds for lithium storage

材料科学 阳极 静电纺丝 石墨烯 煅烧 化学工程 介孔材料 比表面积 碳纳米纤维 纳米复合材料 超级电容器 复合数 氧化物 金属有机骨架 锂(药物) 复合材料 纳米技术 纳米纤维 电极 碳纤维 碳纳米管 聚合物 化学 催化作用 有机化学 物理化学 内分泌学 工程类 医学
作者
Rongrong Li,Huizhen Ke,Chu Shi,Zhiwen Long,Zixin Dai,Hui Qiao,Keliang Wang
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:415: 128874-128874 被引量:11
标识
DOI:10.1016/j.cej.2021.128874
摘要

• High specific surface area (SSA) (241.1 m 2 g −1 ) with robust pores conductive composite nanofibers are prepared. • Superior capacity performance of 2048 and 1712 mAh g −1 for the 1st and after 500th cycles were achieved. • Stable structure with low volume expansion even after long cycling (500th) was presented. Volume expansion is one of the challenges of hindering the implementation of lithium-ion batteries (LIBs). In this respect, the RGO/NiCo 2 O 4 @carbon composite nanofibers (RGO/NCO@C) derived from metal-organic frameworks are developed by an effective in-situ growth, electrospinning and assisted procedure of calcination. The NiCo 2 O 4 particles anchor on the carbon nanofibers that decorated with the graphene sheets to form a bead-like structure, which endows the anode material with large specific surface area (SSA), massive pore structures and desirable mechanical strength. Benefiting from above excellent physical properties, the composite nanofibers greatly relief the volume expansion and efficiently shorten the Li-ion diffusion path. As a result, superior cyclability and great rate capability are obtained upon using as anode material for lithium-ion batteries. An extremely high reversible charge capacity of 2048 mAh g −1 is achieved in the first cycle, and capacity retention of 1712 mAh g −1 is retained after 500 cycles at 0.3 A g −1 . Under various current densities ranging from 0.3 to 2 A g −1 , the reversible capacity of 1783 mAh g −1 at 0.3 A g −1 is sustained. The proposed method and developed materials herein offer an effective strategy to overcoming the volume expansion and preparing electrode materials for high performance LIBs.
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