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Structure stability, fracture, and tuning mechanism of CdSe nanobelts

机译:CdSe纳米带的结构稳定性,断裂和调谐机理

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High pressure synchrotron x-ray diffraction studies have been conducted to explore the structural stability, phase transformation, and resulting mechanisms of CdSe nanobelts. 25-nm-thick wurtzite CdSe nanobelts transform to a rocksalt structure with in situ fracture at 4.0 GPa; this is greater than the transition pressure of 2.5 GPa in bulk and 25 nm nanoparticle. Decompression results in the formation of wurtzite and sphalerite at 1.2 GPa. Total Gibbs free energy calculations demonstrate that the low surface energy ±{210} facets are fully responsible for the enhancement of structure stability. A strongest particle size for the rocksalt phase was determined ~12nm, providing a significant constraint for the fracture of nanobelts and size-tuned enhancement of mechanical properties.
机译:已经进行了高压同步加速器X射线衍射研究,以探索CdSe纳米带的结构稳定性,相变和产生的机理。 25纳米厚的纤锌矿型CdSe纳米带转变为岩盐结构,在4.0 GPa时发生原位断裂;这大于2.5 GPa的体积和25 nm纳米粒子的转变压力。减压导致在1.2 GPa下形成纤锌矿和闪锌矿。总吉布斯自由能计算表明,低表面能±{210}面完全负责增强结构的稳定性。岩石盐相的最强粒径确定为〜12nm,这为纳米带断裂和尺寸调整的机械性能增强提供了显着的约束。

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