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Shape-anisotropy driven symmetry transformations in nanocrystal superlattice polymorphs

机译:纳米晶体超晶格多晶型物的形状各向异性驱动对称转变

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Despite intense research efforts by research groups worldwide, the potential of self-assembled nanocrystal superlattices (NCSLs) has not been realized due to an incomplete understanding of the fundamental molecular interactions governing the self-assembly process. Because NCSLs reside naturally at length-scales between atomic crystals and colloidal assemblies, synthetic control over the properties of constituent nanocrystal (NC) building blocks and their coupling in ordered assemblies is expected to yield a new class of materials with remarkable optical, electronic, and vibrational characteristics. Progress toward the formation of suitable test structures and subsequent development of NCSL-based technologies has been held back by the limited control over superlattice spacing and symmetry. Here we show that NCSL symmetry can be controlled by manipulating molecular interactions between ligands bound to the NC surface and the surrounding solvent. Specifically, we demonstrate solvent vapor-mediated NCSL symmetry transformations that are driven by the orientational ordering of NCs within the lattice. The assembly of various superlattice polymorphs, including face-centered cubic (fcc), body-centered cubic (bcc), and body-centered tetragonal (bct) structures, is studied in real time using in situ grazing incidence small-angle X-ray scattering (GISAXS) under controlled solvent vapor exposure. This approach provides quantitative insights into the molecular level physics that controls solvent-ligand interactions and assembly of NCSLs. Computer simulations based on all-atom molecular dynamics techniques confirm several key insights gained from experiment.
机译:尽管全世界研究小组进行了艰巨的研究,但由于对控制自组装过程的基本分子相互作用的不完全了解,自组装纳米晶体超晶格(NCSL)的潜力尚未实现。由于NCSL自然存在于原子晶体和胶体组件之间的长度尺度上,因此,对组成纳米晶体(NC)构造块的性能及其在有序组件中的耦合进行综合控制,有望产生一类具有显着光学,电子和光学性能的新型材料。振动特性。由于对超晶格间距和对称性的有限控制,阻碍了合适的测试结构的形成以及基于NCSL的技术的后续发展。在这里,我们表明可以通过控制与NC表面结合的配体与周围溶剂之间的分子相互作用来控制NCSL对称性。具体来说,我们证明了溶剂气相介导的NCSL对称性转变是由晶格内NC的取向顺序驱动的。使用原位掠入射小角度X射线实时研究各种超晶格多晶型的组装,包括面心立方(fcc),体心立方(bcc)和体心四方(bct)结构在受控的溶剂蒸气暴露下进行散射(GISAXS)。这种方法提供了对控制溶剂-配体相互作用和NCSL组装的分子级物理学的定量见解。基于全原子分子动力学技术的计算机模拟证实了从实验中获得的一些重要见解。

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