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在蒸发诱导的纳米粒子自组装过程中超晶格的生长和重排。

Superlattice growth and rearrangement during evaporation-induced nanoparticle self-assembly.

机构信息

Jülich Centre for Neutron Science (JCNS) and Peter Grünberg Institute (PGI), JARA-FIT, Forschungszentrum Jülich GmbH, 52425, Jülich, Germany.

Institute of Ion Beam Physics and Materials Research, Helmholtz-Zentrum Dresden Rossendorf, 01328, Dresden, Germany.

出版信息

Sci Rep. 2017 Jun 5;7(1):2802. doi: 10.1038/s41598-017-02121-4.

Abstract

Understanding the assembly of nanoparticles into superlattices with well-defined morphology and structure is technologically important but challenging as it requires novel combinations of in-situ methods with suitable spatial and temporal resolution. In this study, we have followed evaporation-induced assembly during drop casting of superparamagnetic, oleate-capped γ-FeO nanospheres dispersed in toluene in real time with Grazing Incidence Small Angle X-ray Scattering (GISAXS) in combination with droplet height measurements and direct observation of the dispersion. The scattering data was evaluated with a novel method that yielded time-dependent information of the relative ratio of ordered (coherent) and disordered particles (incoherent scattering intensities), superlattice tilt angles, lattice constants, and lattice constant distributions. We find that the onset of superlattice growth in the drying drop is associated with the movement of a drying front across the surface of the droplet. We couple the rapid formation of large, highly ordered superlattices to the capillary-induced fluid flow. Further evaporation of interstitital solvent results in a slow contraction of the superlattice. The distribution of lattice parameters and tilt angles was significantly larger for superlattices prepared by fast evaporation compared to slow evaporation of the solvent.

摘要

理解纳米粒子组装成具有明确定义形态和结构的超晶格在技术上很重要,但具有挑战性,因为它需要将原位方法与具有适当空间和时间分辨率的方法进行新颖组合。在这项研究中,我们通过实时跟踪蒸发诱导组装,在甲苯中分散的超顺磁油酸盐封端的 γ-FeO 纳米球在进行液滴铸造过程中,通过掠入射小角 X 射线散射(GISAXS)与液滴高度测量和分散体的直接观察相结合。使用一种新方法评估散射数据,该方法提供了有序(相干)和无序粒子(非相干散射强度)的相对比例、超晶格倾斜角、晶格常数和晶格常数分布的时间依赖性信息。我们发现,在干燥液滴中超晶格生长的开始与干燥前沿在液滴表面上的移动有关。我们将大的、高度有序的超晶格的快速形成与毛细诱导的流体流动结合起来。进一步蒸发间隙溶剂会导致超晶格缓慢收缩。与溶剂的缓慢蒸发相比,快速蒸发制备的超晶格的晶格参数和倾斜角分布明显更大。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccaf/5459806/49a60ae96176/41598_2017_2121_Fig1_HTML.jpg

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