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Applied Stress-Assisted Growth of Single Crystal γ-Fe2O3 Nanowires

机译:应力辅助单晶γ-Fe2O3纳米线的生长

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摘要

It is difficult to obtain γ-Fe2O3 nanostructures by heating iron substrate in ambient conditions because γ-Fe2O3 is less thermodynamically stable than α-Fe2O3. In this work, we synthesize γ-Fe2O3 nanowires by heating iron particles under an external force. The stacking style of iron and oxygen ions under a strong shearing stress tends to adopt the γ-Fe2O3 structure regardless of the thermodynamic restriction. These γ-Fe2O3 nanowires exhibit a clear ferromagnetic property. Transmission electron microscopy (TEM) and X-ray diffraction (XRD) measurements confirm that γ-phase structure appears only under the applied external force during the heating period. A window of the magnitude of the external force is found to help the nanowire growth on iron particles. The growth mechanism of γ-Fe2O3 nanowires other than α-Fe2O3 under the external force is discussed and an applied stress-assisted growth model is proposed. This work presents an easy approach to produce ferromagnetic iron oxide nanowires on a large scale.
机译:由于在环境条件下加热铁基板很难获得γ-Fe2O3纳米结构,因为γ-Fe2O3的热力学稳定性不如α-Fe2O3。在这项工作中,我们通过在外力作用下加热铁颗粒来合成γ-Fe2O3纳米线。不受热力学限制,在高剪切应力下铁和氧离子的堆积方式倾向于采用γ-Fe2O3结构。这些γ-Fe2O3纳米线表现出明显的铁磁特性。透射电子显微镜(TEM)和X射线衍射(XRD)测量证实,只有在加热期间外力作用下,γ相结构才会出现。发现外力大小的窗口有助于纳米线在铁颗粒上的生长。探讨了在外力作用下除α-Fe2O3以外的γ-Fe2O3纳米线的生长机理,并提出了应用应力辅助生长模型。这项工作为大规模生产铁磁性氧化铁纳米线提供了一种简便的方法。

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