首页> 外文期刊>Scientific reports. >Facile One-pot Transformation of Iron Oxides from Fe2O3 Nanoparticles to Nanostructured Fe3O4@C Core-Shell Composites via Combustion Waves
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Facile One-pot Transformation of Iron Oxides from Fe2O3 Nanoparticles to Nanostructured Fe3O4@C Core-Shell Composites via Combustion Waves

机译:通过燃烧波将一氧化铁从Fe2O3纳米颗粒轻松转换为纳米结构的Fe3O4 @ C核壳复合材料

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摘要

The development of a low-cost, fast, and large-scale process for the synthesis and manipulation of nanostructured metal oxides is essential for incorporating materials with diverse practical applications. Herein, we present a facile one-pot synthesis method using combustion waves that simultaneously achieves fast reduction and direct formation of carbon coating layers on metal oxide nanostructures. Hybrid composites of Fe2O3 nanoparticles and nitrocellulose on the cm scale were fabricated by a wet impregnation process. We demonstrated that self-propagating combustion waves along interfacial boundaries between the surface of the metal oxide and the chemical fuels enabled the release of oxygen from Fe2O3. This accelerated reaction directly transformed Fe2O3 into Fe3O4 nanostructures. The distinctive color change from reddish-brown Fe2O3 to dark-gray Fe3O4 confirmed the transition of oxidation states and the change in the fundamental properties of the material. Furthermore, it simultaneously formed carbon layers of 5-20 nm thickness coating the surfaces of the resulting Fe3O4 nanoparticles, which may aid in maintaining the nanostructures and improving the conductivity of the composites. This newly developed use of combustion waves in hybridized nanostructures may permit the precise manipulation of the chemical compositions of other metal oxide nanostructures, as well as the formation of organic/inorganic hybrid nanostructures.
机译:对于纳米结构金属氧化物的合成和操作而言,开发低成本,快速且大规模的工艺对于整合具有多种实际应用的材料至关重要。在这里,我们提出了一种使用燃烧波的便捷的一锅法合成方法,该方法同时实现了金属氧化物纳米结构上碳涂层的快速还原和直接形成。通过湿法浸渍法制备了厘米级的Fe2O3纳米颗粒和硝化纤维的杂化复合材料。我们证明了沿着金属氧化物表面与化学燃料之间的界面边界的自蔓延燃烧波能够使Fe2O3释放出氧气。这种加速的反应将Fe2O3直接转化为Fe3O4纳米结构。从红棕色Fe2O3到深灰色Fe3O4的独特颜色变化证实了氧化态的转变和材料基本性能的变化。此外,它同时形成了5-20 nm厚度的碳层,覆盖了所得的Fe3O4纳米颗粒的表面,这可能有助于维持纳米结构并改善复合材料的导电性。在混合纳米结构中燃烧波的这种新开发用途可以允许对其他金属氧化物纳米结构的化学成分进行精确控制,以及形成有机/无机混合纳米结构。

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