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Superlattices assembled through shape-induced directional binding

机译:通过形状诱导的定向结合组装的超晶格

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Organization of spherical particles into lattices is typically driven by packing considerations. Although the addition of directional binding can significantly broaden structural diversity, nanoscale implementation remains challenging. Here we investigate the assembly of clusters and lattices in which anisotropic polyhedral blocks coordinate isotropic spherical nanoparticles via shape-induced directional interactions facilitated by DNA recognition. We show that these polyhedral blocks-cubes and octahedrons-when mixed with spheres, promote the assembly of clusters with architecture determined by polyhedron symmetry. Moreover, three-dimensional binary superlattices are formed when DNA shells accommodate the shape disparity between nanoparticle interfaces. The crystallographic symmetry of assembled lattices is determined by the spatial symmetry of the block's facets, while structural order depends on DNA-tuned interactions and particle size ratio. The presented lattice assembly strategy, exploiting shape for defining the global structure and DNA-mediation locally, opens novel possibilities for by-design fabrication of binary lattices.
机译:球形颗粒组织成晶格通常是由包装考虑决定的。尽管添加定向结合可以显着拓宽结构多样性,但纳米级实施仍具有挑战性。在这里,我们研究了簇和晶格的组装,其中各向异性多面体嵌段通过形状识别的定向相互作用(由DNA识别促进)来协调各向同性球形纳米颗粒。我们显示,当这些多面体块(立方体和八面体)与球体混合时,会促进具有多面体对称性确定的体系结构的簇的组装。此外,当DNA壳容纳纳米粒子界面之间的形状差异时,就会形成三维二元超晶格。组装晶格的晶体学对称性由块刻面的空间对称性决定,而结构顺序取决于DNA调节的相互作用和粒径比。提出的晶格组装策略,利用形状来定义全局结构和局部DNA介导,为二元晶格的按需设计制造开辟了新的可能性。

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