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使用原位小角X射线散射实时监测纳米晶体自组装

Monitoring Nanocrystal Self-Assembly in Real Time Using In Situ Small-Angle X-Ray Scattering.

作者信息

Lokteva Irina, Koof Michael, Walther Michael, Grübel Gerhard, Lehmkühler Felix

机构信息

Deutsches Elektronen-Synchrotron (DESY), Notkestraße 85, 22607, Hamburg, Germany.

The Hamburg Centre for Ultrafast Imaging (CUI), Luruper Chaussee 149, 22761, Hamburg, Germany.

出版信息

Small. 2019 May;15(20):e1900438. doi: 10.1002/smll.201900438. Epub 2019 Apr 16.

Abstract

Self-assembled nanocrystal superlattices have attracted large scientific attention due to their potential technological applications. However, the nucleation and growth mechanisms of superlattice assemblies remain largely unresolved due to experimental difficulties to monitor intermediate states. Here, the self-assembly of colloidal PbS nanocrystals is studied in real time by a combination of controlled solvent evaporation from the bulk solution and in situ small-angle X-ray scattering (SAXS) in transmission geometry. For the first time for the investigated system a hexagonal closed-packed (hcp) superlattice formed in a solvent vapor saturated atmosphere is observed during slow solvent evaporation from a colloidal suspension. The highly ordered hcp superlattice is followed by a transition into the final body-centered cubic superlattice upon complete drying. Additionally, X-ray cross-correlation analysis of Bragg reflections is applied to access information on precursor structures in the assembly process, which is not evident from conventional SAXS analysis. The detailed evolution of the crystal structure with time provides key results for understanding the assembly mechanism and the role of ligand-solvent interactions, which is important both for fundamental research and for fabrication of superlattices with desired properties.

摘要

自组装纳米晶体超晶格因其潜在的技术应用而引起了科学界的广泛关注。然而,由于监测中间状态存在实验困难,超晶格组装的成核和生长机制在很大程度上仍未得到解决。在此,通过从本体溶液中控制溶剂蒸发与透射几何构型下的原位小角X射线散射(SAXS)相结合,实时研究了胶体PbS纳米晶体的自组装过程。对于所研究的体系,首次观察到在从胶体悬浮液缓慢蒸发溶剂的过程中,在溶剂蒸汽饱和气氛中形成了六方密堆积(hcp)超晶格。在完全干燥后,高度有序的hcp超晶格会转变为最终的体心立方超晶格。此外,应用布拉格反射的X射线互相关分析来获取组装过程中前驱体结构的信息,这是传统SAXS分析无法明显得到的。晶体结构随时间的详细演变提供了关键结果,有助于理解组装机制以及配体 - 溶剂相互作用的作用,这对于基础研究和制备具有所需性能的超晶格都很重要。

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