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Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical, Catalytic, and Environmental Applications

机译:锂离子电池,医疗,催化和环境应用中的铁氧化物支持的纳米碳

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摘要

Owing to the three different orbital hybridizations carbon can adopt, the existence of various carbon nanoallotropes differing also in dimensionality has been already affirmed with other structures predicted and expected to emerge in the future. Despite numerous unique features and applications of 2D graphene, 1D carbon nanotubes, or 0D fullerenes, nanodiamonds, and carbon quantum dots, which have been already heavily explored, any of the existing carbon allotropes do not offer competitive magnetic properties. For challenging applications, carbon nanoallotropes are functionalized with magnetic species, especially of iron oxide nature, due to their interesting magnetic properties (superparamagnetism and strong magnetic response under external magnetic fields), easy availability, biocompatibility, and low cost. In addition, combination of iron oxides (magnetite, maghemite, hematite) and carbon nanostructures brings enhanced electrochemical performance and (photo)catalytic capability due to synergetic and cooperative effects. This work aims at reviewing these advanced applications of iron-oxide-supported nanocarbon composites where iron oxides play a diverse role. Various architectures of carbon/iron oxide nanocomposites, their synthetic procedures, physicochemical properties, and applications are discussed in details. A special attention is devoted to hybrids of carbon nanotubes and rare forms (mesoporous carbon, nanofoam) with magnetic iron oxide carriers for advanced environmental technologies. The review also covers the huge application potential of graphene/iron oxide nanocomposites in the field of energy storage, biomedicine, and remediation of environment. Among various discussed medical applications, magnetic composites of zero-dimensional fullerenes and carbon dots are emphasized as promising candidates for complex theranostics and dual magneto-fluorescence imaging.
机译:由于碳可以采用三种不同的轨道杂交方式,因此已经确定了存在各种维数也不同的碳纳米链,并且已经预测并预期在将来会出现其他结构。尽管2D石墨烯,1D碳纳米管或0D富勒烯,纳米金刚石和碳量子点具有许多独特的特性和应用,这些特性已经得到了广泛的探索,但是任何现有的碳同素异形体都没有提供竞争的磁性。对于具有挑战性的应用,碳纳米节肢动物由于具有令人感兴趣的磁性(超顺磁性和在外部磁场下的强磁响应),易于获得,生物相容性和低成本,因此可以利用磁性物质(尤其是氧化铁性质)进行功能化。另外,氧化铁(磁铁矿,磁赤铁矿,赤铁矿)和碳纳米结构的组合由于协同作用和协同作用而带来增强的电化学性能和(光)催化能力。这项工作旨在审查氧化铁担载的纳米碳复合材料在这些方面的先进应用,其中氧化铁起着不同的作用。详细讨论了碳/氧化铁纳米复合材料的各种结构,其合成程序,理化性质和应用。特别关注碳纳米管和稀有形式(中碳,纳米泡沫)与磁性氧化铁载体的混合,以用于先进的环境技术。审查还涵盖了石墨烯/氧化铁纳米复合材料在储能,生物医学和环境修复领域的巨大应用潜力。在各种已讨论的医学应用中,零维富勒烯和碳点的磁性复合材料被强调为复杂的诊断学和双磁荧光成像的有前途的候选者。

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