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Supra-Nanoparticle Functional Assemblies through Programmable Stacking

机译:通过可编程堆叠的Supra-纳米粒子功能组件

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摘要

The quest for the by-design assembly of material and devices from nanoscale inorganic components is well recognized. Conventional self-assembly is often limited in its ability to control material morphology and structure simultaneously. Here, we report a general method of assembling nanoparticles in a linear "pillar" morphology with regulated internal configurations. Our approach is inspired by supramolecular systems, where intermolecular stacking guides the assembly process to form diverse linear morphologies. Programmable stacking interactions were realized through incorporation of DNA coded recognition between the designed planar nanoparticle clusters. This resulted in the formation of multilayered pillar architectures with a well-defined internal nanoparticle organization. By controlling the number, position, size, and composition of the nanoparticles in each layer, a broad range of nanoparticle pillars were assembled and characterized in detail. In addition, we demonstrated the utility of this stacking assembly strategy for investigating plasmonic and electrical transport properties.
机译:探讨纳米级无机组件的材料和器件的逐个设计装配得到了很好的认可。传统的自组装通常限制在其同时控制材料形态和结构的能力。在这里,我们通过调节的内部构造报告了用线性“柱子”形态的组装纳米颗粒的一般方法。我们的方法是由超分子系统的启发,其中分子间堆叠引导组装过程形成不同的线性形态。通过掺入所设计的平面纳米颗粒之间的DNA编码识别来实现可编程堆叠相互作用。这导致形成具有明确鉴定的内纳米粒子组织的多层柱架构。通过控制每层纳米颗粒的纳米颗粒的数量,位置,尺寸和组合物,可以详细地组装宽范围的纳米颗粒柱。此外,我们证明了该堆叠组装策略的效用,用于研究等离子体和电气运输性能。

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