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Pressure compression of CdSe nanoparticles into luminescent nanowires

机译:将CdSe纳米颗粒压力压缩成发光纳米线

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摘要

Oriented attachment (OA) of synthetic nanocrystals is emerging as an effective means of fabricating low-dimensional nanoscale materials. However, OA relies on energetically favorable nanocrystal facets to grow nanostructured materials. Consequently, nanostructures synthesized through OA are generally limited to a specific crystal facet in their final morphology. We report our discovery that high-pressure compression can induce consolidation of spherical CdSe nanocrystal arrays, leading to unexpected one-dimensional semiconductor nanowires that do not exhibit the typical crystal facet. In particular, in situ high-pressure synchrotron x-ray scattering, optical spectroscopy, and high-resolution transmission electron microscopy characterizations indicate that by manipulating the coupling between nanocrystals through external pressure, a reversible change in nanocrystal assemblies and properties can be achieved at modest pressure. When pressure is increased above a threshold, these nanocrystals begin to contact one another and consolidate, irreversibly forming one-dimensional luminescent nanowires. High-fidelity molecular dynamics (MD) methods were used to calculate surface energies and simulate compression and coalescence mechanisms of CdSe nanocrystals. The MD results provide new insight into nanowire assembly dynamics and phase stability of nanocrystalline structures.
机译:合成纳米晶体的定向附着(OA)逐渐成为制造低维纳米级材料的有效手段。但是,OA依靠能量上有利的纳米晶面来生长纳米结构材料。因此,通过OA合成的纳米结构通常在其最终形态上仅限于特定的晶面。我们报告我们的发现,高压压缩可以诱导球形CdSe纳米晶体阵列的固结,从而导致出乎意料的一维半导体纳米线,这些纳米线没有典型的晶面。特别是,原位高压同步加速器X射线散射,光谱学和高分辨率透射电子显微镜表征表明,通过利用外部压力操纵纳米晶体之间的耦合,可以适度实现纳米晶体组件和性能的可逆变化。压力。当压力增加到阈值以上时,这些纳米晶体开始彼此接触并固结,不可逆地形成一维发光纳米线。高保真分子动力学(MD)方法用于计算表面能,并模拟CdSe纳米晶体的压缩和聚结机理。 MD结果为纳米线组装动力学和纳米晶体结构的相稳定性提供了新的见识。

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