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Fine-tunable plasma nano-machining for fabrication of 3D hollow nanostructures: SERS application

机译:用于3D中空纳米结构的微量可调谐等离子体纳米加工:SERS应用

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摘要

Novel processing sequences for the fabrication of artificial nanostructures are in high demand for various applications. In this paper, we report on a fine-tunable nano-machining technique for the fabrication of 3D hollow nanostructures. This technique originates from redeposition effects occurring during Ar dry etching of nano-patterns. Different geometries of honeycomb, double ring, nanotube, cone and crescent arrays have been successfully fabricated from various metals such as Au, Ag, Pt and Ti. The geometrical parameters of the 3D hollow nanostructures can be straightforwardly controlled by tuning the discharge plasma pressure and power. The structure and morphology of nanostructures are probed using atomic force microscopy (AFM), scanning electron microscopy (SEM), optical emission spectroscopy (OES) and energy dispersive x-ray spectroscopy (EDS). Finally, a Ag nanotube array was assayed for application in surface enhanced Raman spectroscopy (SERS), resulting in an enhancement factor (EF) of 5.5 x 10(5), as an experimental validity proof consistent with the presented simulation framework. Furthermore, it was found that the theoretical EF value for the honeycomb array is in the order of 10(7), a hundred times greater than that found in nanotube array.
机译:用于制造人造纳米结构的新型处理序列对各种应用有很高的需求。在本文中,我们报告了一种用于制造3D中空纳米结构的微调纳米加工技术。该技术来自在AR干蚀刻的纳米图案中发生的重新沉降效果。不同的几何形状的蜂窝,双环,纳米管,锥形和新月形阵列已经成功地由各种金属制成,例如Au,Ag,Pt和Ti。通过调谐放电等离子体压力和功率,可以直接控制3D中空纳米结构的几何参数。使用原子力显微镜(AFM),扫描电子显微镜(SEM),光发射光谱(OES)和能量分散X射线光谱(EDS)探测纳米结构的结构和形态。最后,在表面增强的拉曼光谱(SERS)中测定AG纳米管阵列,导致5.5×10(5)的增强因子(EF),作为与所呈现的模拟框架一致的实验有效性证明。此外,发现蜂窝阵列的理论EF值大于10(7),比在纳米管阵列中发现的百倍。

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