Engineering a hierarchical carbon supported magnetite nanoparticles composite from metal organic framework and graphene oxide for lithium-ion storage

石墨烯 材料科学 锂(药物) 氧化物 化学工程 共沉淀 复合数 纳米颗粒 碳纤维 金属有机骨架 纳米技术 复合材料 化学 有机化学 冶金 吸附 医学 内分泌学 工程类
作者
Ruixin Jia,Rui Zhang,Longbiao Yu,Xiangli Kong,Shouchun Bao,Mengyao Tu,Xuehua Liu,Binghui Xu
出处
期刊:Journal of Colloid and Interface Science [Elsevier BV]
卷期号:630: 86-98 被引量:83
标识
DOI:10.1016/j.jcis.2022.10.088
摘要

Fe based metal organic framework (MOF) materials are being extensively investigated as a precursor sample for engineering carbon supported iron containing nanoparticles composites. Rational design and engineering Fe-containing MOFs with optimized structures using economic and eco-friendly methods is a challenging task. In this work, 1,3,5-benzenetricarboxylic acid (C9H6O6, trimesic acid, H3BTC) and metal Fe are employed to synthesize a MOF sample Fe-BTC in a mild hydrothermal condition. Moreover, with the addition of a small quantity of graphene oxide (GO) as dispersant, a redox coprecipitation reaction has taken place where small Fe-BTC domains well dispersed by reduced graphene oxide (RGO). The Fe-BTC/RGO intermediate sample is finally converted to the hierarchical Fe3O4@C/RGO composite, which delivers an ultrahigh specific capacity of 1262.61 mAh·g−1 at 200 mA·g−1 after 150 cycles and a superior reversible capacity of 910.65 mAh·g−1 at 1000 mA·g−1 after 300 cycles in half cells. The full cell performance for the Fe3O4@C/RGO composite have been studied. It is also revealed that the improved structural stability, high pseudocapacitive contribution and enhanced lithium-ion and electron transportation conditions jointly guarantee the outstanding lithium-ion storage performances for the Fe3O4@C/RGO composite over long-time cycling. The synthesized samples have good potential for wider application.
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