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Phase Transformations in Au-Fe Particles and Thin Films: Size Effects at the Micro- and Nano-scales

机译:Au-Fe颗粒和薄膜中的相变:微型和纳米尺度的尺寸效应

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Thin Au-Fe bilayers (3-30 nm in total thickness) were deposited on sapphire substrates. Annealing in a temperature range of 600-1100A degrees C resulted in solid-state dewetting and the subsequent formation of micro- and nano-particles. Electron microscopy, atomic force microscopy and in situ x-ray diffraction were employed to systematically study two phase transformations in the Au-Fe system: (1) precipitation of alpha-Fe from supersaturated Au-Fe solid-solution particles; and (2) alpha a dagger"gamma transformation in Fe and Au-Fe thin films and particles. In both cases, the transformations proceeded differently than in the bulk already for sub-micron (100 nm to 1 mu m) particles. These results were explained by the low defect concentration in the particles, nucleation difficulties, slow diffusivity on facets, and Au segregation. A "reverse size effect" was observed in thin Fe films, and discussed in terms of nucleation model taking into account the small size of the parent phase. The main conclusion is that phase transformations in the particles and in the bulk proceed differently, not only for nano-sized particles as was customarily believed but also for particles of sub-micrometer size. We suggest that this size effect is governed by two different length scales: the inter-defect spacing (upper limit) and the bulk critical nucleus size (lower limit).
机译:薄的Au-Fe双层(总厚度为3-30nm)沉积在蓝宝石底物上。在600-1100A℃的温度范围内退火,导致固态脱模和随后形成微颗粒和纳米颗粒。电子显微镜,原子力显微镜和原位X射线衍射用于系统地研究Au-Fe系统中的两相变化:(1)从超饱和Au-Fe固溶体颗粒的α-Fe沉淀; (2)α匕首“Fe和Au-Fe薄膜和颗粒中的伽马转化。在这两种情况下,转化比亚微米(100nm至1μm)颗粒的块状物质不同。这些结果通过颗粒中的低缺陷浓度,核心困难,小心慢的扩散性和Au偏析来解释。在薄的Fe膜上观察到“反向尺寸效应”,并考虑到小尺寸的成核模型讨论父阶段。主要结论是颗粒中的相变,并且在体积中,不仅适用于纳米尺寸颗粒,如通常认为的亚微米尺寸的颗粒。我们建议这个尺寸的效果受到约束通过两个不同的长度尺度:缺陷间距(上限)和散装临界核尺寸(下限)。

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