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Understanding and tailoring ligand interactions in the self-assembly of branched colloidal nanocrystals into planar superlattices

机译:在分支胶体纳米晶体自组装成平面超晶格的自组装中理解和定制配体相互作用

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Colloidal nanocrystals can self-assemble into highly ordered superlattices. Recent studies have focused on changing their morphology by tuning the nanocrystal interactions via ligand-based surface modification for simple particle shapes. Here we demonstrate that this principle is transferable to and even enriched in the case of a class of branched nanocrystals made of a CdSe core and eight CdS pods, so-called octapods. Through careful experimental analysis, we show that the octapods have a heterogeneous ligand distribution, resembling a cone wrapping the individual pods. This induces location-specific interactions that, combined with variation of the pod aspect ratio and ligands, lead to a wide range of planar superlattices assembled at an air–liquid interface. We capture these findings using a simple simulation model, which reveals the necessity of including ligand-based interactions to achieve these superlattices. Our work evidences the sensitivity that ligands offer for the self-assembly of branched nanocrystals, thus?opening new routes for metamaterial creation.
机译:胶体纳米晶体可以自组装成高度有序的超晶格。最近的研究集中在通过基于配体的简单颗粒形状的表面修饰来调节纳米晶体的相互作用来改变其形态。在这里,我们证明,在由CdSe核和8个CdS荚(所谓的八足体)制成的一类支化纳米晶体的情况下,该原理可以转移甚至丰富。通过仔细的实验​​分析,我们表明八足动物具有异质配体分布,类似于包裹各个豆荚的圆锥体。这引起了特定位置的相互作用,再加上豆荚的长宽比和配体的变化,导致了在气液界面处组装的各种平面超晶格。我们使用一个简单的仿真模型捕获了这些发现,该模型揭示了包括基于配体的相互作用以实现这些超晶格的必要性。我们的工作证明了配体对支链纳米晶体自组装的敏感性,从而为超材料的创造开辟了新途径。

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