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Three-Dimensional Crystalline and Homogeneous Metallic Nanostructures Using Directed Assembly of Nanoparticles

机译:使用纳米粒子的直接组装的三维晶体和均质金属纳米结构。

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摘要

Directed assembly of nano building blocks offers a versatile route to the creation of complex nanostructures with unique properties. Bottom-up directed assembly of nanoparticles have been considered as one of the best approaches to fabricate such functional and novel nanostructures. However, there is a dearth of studies on making crystalline, solid, and homogeneous nanostructures. This requires a fundamental understanding of the forces driving the assembly of nanoparticles and precise control of these forces to enable the formation of desired nanostructures. Here, we demonstrate that colloidal nanoparticles can be assembled and simultaneously fused into 3-D solid nanostructures in a single step using externally applied electric field. By understanding the influence of various assembly parameters, we showed the fabrication of 3-D metallic materials with complex geometries such as nanopillars, nanoboxes, and nanorings with feature sizes as small as 25 nm in less than a minute. The fabricated gold nanopillars have a polycrystalline nature, have an electrical resistivity that is lower than or equivalent to electroplated gold, and support strong plasmonic resonances. We also demonstrate that the fabrication process is versatile, as fast as electroplating, and scalable to the millimeter scale. These results indicate that the presented approach will facilitate fabrication of novel 3-D nanomaterials (homogeneous or hybrid) in an aqueous solution at room temperature and pressure, while addressing many of the manufacturing challenges in semiconductor nanoelectronics and nanophotonics.
机译:纳米构件的定向组装为创建具有独特特性的复杂纳米结构提供了一条通用途径。自下而上的纳米粒子定向组装已被认为是制造这种功能性和新型纳米结构的最佳方法之一。然而,缺乏关于制造晶体,固体和均质纳米结构的研究。这需要对驱动纳米颗粒组装的力有基本的了解,并需要精确控制这些力以形成所需的纳米结构。在这里,我们证明胶体纳米粒子可以组装并同时使用外部施加的电场在单个步骤中同时融合成3-D固体纳米结构。通过了解各种组装参数的影响,我们展示了在不到一分钟的时间内即可制造出具有复杂几何形状的3-D金属材料,例如纳米柱,纳米盒和特征尺寸小至25 nm的纳米环。制成的金纳米柱具有多晶性质,其电阻率低于或等于电镀金,并支持强等离子体共振。我们还证明了制造过程是通用的,与电镀一样快,并且可扩展到毫米级。这些结果表明,提出的方法将有助于在室温和压力下在水溶液中制造新颖的3D纳米材料(均质或杂化),同时解决半导体纳米电子学和纳米光子学中的许多制造挑战。

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