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首页> 外文期刊>Journal of Colloid and Interface Science >Periodic arrays of metal nanorings and nanocrescents fabricated by a scalable colloidal templating approach
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Periodic arrays of metal nanorings and nanocrescents fabricated by a scalable colloidal templating approach

机译:通过可扩展的胶体模板方法制造的金属纳米环和纳米月牙的周期性阵列

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摘要

Here, we report a scalable bottom-up approach for fabricating periodic arrays of metal nanorings and nanocrescents. Wafer-scale monolayer silica colloidal crystals with an unusual non-close-packed structure prepared by a simple and rapid spin-coating technology are used as both etching and shadowing masks to create nanoring-shaped trenches in between templated polymer posts and sacrificial nanoholes. Directional deposition of metals in the trenches followed by liftoff of the polymer posts and the sacrificial nanoholes results in forming ordered metal nanorings. The inner and outer radii of the final nanorings are determined by the sizes of the templated polymer posts and the silica microspheres which can be easily adjusted by tuning the spin-coating and templating conditions. Most importantly, by simply controlling the tilt angle of the substrate toward the directional metal beams, continuous geometric transition from concentric nanorings to eccentric nanorings to nanocrescents can be achieved. This new colloidal templating approach is compatible with standard semiconductor microfabrication, promising for mass-production and on-chip integration of periodic nanorings and nanocrescents for a wide spectrum of technological applications ranging from nanooptical devices and ultrasensitive biosensing to magnetic memories and logic circuits.
机译:在这里,我们报告了一种可扩展的自下而上的方法,用于制造金属纳米环和纳米月牙的周期性阵列。通过简单和快速的旋涂技术制备的具有不同寻常的非密堆积结构的晶圆级单层二氧化硅胶体晶体既用作蚀刻掩模也用作遮蔽掩模,以在模板化聚合物柱和牺牲性纳米孔之间形成纳米环形沟槽。金属在沟槽中的定向沉积,然后剥离聚合物柱和牺牲性的纳米孔,导致形成有序的金属纳米环。最终纳米环的内半径和外半径由模板化聚合物柱和二氧化硅微球的尺寸决定,可以通过调整旋涂和模板化条件轻松调整尺寸。最重要的是,通过简单地控制衬底朝向定向金属束的倾斜角度,可以实现从同心纳米环到偏心纳米环到纳米月牙的连续几何过渡。这种新的胶体模板方法与标准的半导体微制造兼容,有望用于周期性纳米环和纳米月牙的大规模生产和片上集成,从而适用于从纳米光学器件和超灵敏生物传感到磁存储器和逻辑电路的广泛技术应用。

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