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超分散四氧化三钴纳米颗粒组装在石墨烯气凝胶中用于连续光芬顿反应和增强的锂存储性能。

Ultradispersed Cobalt Ferrite Nanoparticles Assembled in Graphene Aerogel for Continuous Photo-Fenton Reaction and Enhanced Lithium Storage Performance.

机构信息

Key Laboratory for Advanced Materials and Institute of Fine Chemicals, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, P.R. China.

出版信息

Sci Rep. 2016 Jul 4;6:29099. doi: 10.1038/srep29099.

Abstract

The Photo-Fenton reaction is an advanced technology to eliminate organic pollutants in environmental chemistry. Moreover, the conversion rate of Fe(3+)/Fe(2+) and utilization rate of H2O2 are significant factors in Photo-Fenton reaction. In this work, we reported three dimensional (3D) hierarchical cobalt ferrite/graphene aerogels (CoFe2O4/GAs) composites by the in situ growing CoFe2O4 crystal seeds on the graphene oxide (GO) followed by the hydrothermal process. The resulting CoFe2O4/GAs composites demonstrated 3D hierarchical pore structure with mesopores (1418 nm), macropores (50125 nm), and a remarkable surface area (177.8 m(2 )g(-1)). These properties endowed this hybrid with the high and recyclable Photo-Fenton activity for methyl orange pollutant degradation. More importantly, the CoFe2O4/GAs composites can keep high Photo-Fenton activity in a wide pH. Besides, the CoFe2O4/GAs composites also exhibited excellent cyclic performance and good rate capability. The 3D framework can not only effectively prevent the volume expansion and aggregation of CoFe2O4 nanoparticles during the charge/discharge processes for Lithium-ion batteries (LIBs), but also shorten lithium ions and electron diffusion length in 3D pathways. These results indicated a broaden application prospect of 3D-graphene based hybrids in wastewater treatment and energy storage.

摘要

光芬顿反应是环境化学中消除有机污染物的一种先进技术。此外,Fe(3+)/Fe(2+)的转化率和 H2O2 的利用率是光芬顿反应中的重要因素。在这项工作中,我们通过在氧化石墨烯(GO)上原位生长 CoFe2O4 晶体种子,然后通过水热法制备了三维(3D)分层钴铁氧体/石墨烯气凝胶(CoFe2O4/GAs)复合材料。所得到的 CoFe2O4/GAs 复合材料具有 3D 分层孔结构,具有中孔(1418nm)、大孔(50125nm)和显著的比表面积(177.8m(2)g(-1))。这些特性赋予了这种杂化材料具有高效且可回收的光芬顿活性,可用于降解甲基橙污染物。更重要的是,CoFe2O4/GAs 复合材料在较宽的 pH 值范围内仍能保持高的光芬顿活性。此外,CoFe2O4/GAs 复合材料还表现出优异的循环性能和良好的倍率性能。3D 框架不仅可以有效防止锂离子电池(LIBs)充放电过程中 CoFe2O4 纳米粒子的体积膨胀和聚集,而且可以缩短 3D 途径中锂离子和电子的扩散长度。这些结果表明,3D 石墨烯基杂化物在废水处理和储能方面具有广阔的应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aa20/4931445/c5515e442cf2/srep29099-f1.jpg

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