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Hierarchical assembly of metal nanoparticles, quantum dots and organic dyes using DNA origami scaffolds

机译:使用DNA折纸支架对金属纳米颗粒,量子点和有机染料进行分层组装

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The self-assembly of nanoscale elements into three-dimensional structures with precise shapes and sizes is important in fields such as nanophotonics, metamaterials and biotechnology. Short molecular linkers have previously been used to create assemblies of nanoparticles, but the approach is limited to small interparticle distances, typically less than 10 nm. Alternatively, DNA origami can precisely organize nanoscale objects over much larger length scales. Here we show that rigid DNA origami scaffolds can be used to assemble metal nanoparticles, quantum dots and organic dyes into hierarchical nanoclusters that have a planet-satellite-type structure. The nanoclusters have a tunable stoichiometry, defined distances of 5-200 nm between components, and controllable overall sizes of up to 500 nm. We also show that the nanoscale components can be positioned along the radial DNA spacers of the nanostructures, which allows short- and long-range interactions between nanoparticles and dyes to be studied in solution. The approach could, in the future, be used to construct efficient energy funnels, complex plasmonic architectures, and porous, nanoengineered scaffolds for catalysis.
机译:在诸如纳米光子学,超材料和生物技术等领域,将纳米级元素自组装成具有精确形状和尺寸的三维结构非常重要。短分子接头先前已被用于制造纳米颗粒的组装体,但是该方法仅限于较小的颗粒间距离,通常小于10 nm。或者,DNA折纸可以在更大的长度尺度上精确地组织纳米级物体。在这里,我们证明了刚性DNA折纸支架可用于将金属纳米颗粒,量子点和有机染料组装成具有卫星型结构的分层纳米簇。纳米团簇具有可调的化学计量比,各组分之间的定义距离为5-200 nm,可控制的整体尺寸最大为500 nm。我们还表明,纳米级组件可以沿着纳米结构的径向DNA间隔子定位,这允许在溶液中研究纳米粒子和染料之间的短程和长程相互作用。将来,该方法可用于构建高效的能量漏斗,复杂的等离子体结构以及用于催化的多孔纳米工程支架。

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