Abstract

The nanosphere lithography (NSL) method can be developed to deposit the Au-Ag triangle hexagonal nanoparticle arrays for the generation of localized surface plasmon resonance. Previously, we have found that the parameters used to form the NSL masks and the physical methods required to deposit the Au-Ag thin films had large effects on the geometry properties of the nanoparticle arrays. Considering this, the different parameters used to grow the Au-Ag triangle hexagonal nanoparticle arrays were investigated. A single-layer NSL mask was formed by using self-assembly nano-scale polystyrene (PS) nanospheres with an average radius of 265 nm. At first, the concentration of the nano-scale PS nanospheres in the solution was set at 6 wt %. Two coating methods, drop-coating and spin-coating, were used to coat the nano-scale PS nanospheres as a single-layer NSL mask. From the observations of scanning electronic microscopy (SEM), we found that the matrixes of the PS nanosphere masks fabricated by using the drop-coating method were more uniform and exhibited a smaller gap than those fabricated by the spin-coating method. Next, the drop-coating method was used to form the single-layer NSL mask and the concentration of nano-scale PS nanospheres in a solution that was changed from 4 to 10 wt %, for further study. The SEM images showed that when the concentrations of PS nanospheres in the solution were 6 and 8 wt %, the matrixes of the PS nanosphere masks were more uniform than those of 4 and 10 wt %. The effects of the one-side lifting angle of substrates and the vaporization temperature for the solvent of one-layer self-assembly PS nanosphere thin films, were also investigated. Finally, the concentration of the nano-scale PS nanospheres in the solution was set at 8 wt % to form the PS nanosphere masks by the drop-coating method. Three different physical deposition methods, including thermal evaporation, radio-frequency magnetron sputtering, and e-gun deposition, were used to deposit the Au-Ag triangle hexagonal periodic nanoparticle arrays. The SEM images showed that as the single-layer PS nanosphere mask was well controlled, the thermal evaporation could deposit the Au-Ag triangle hexagonal nanoparticle arrays with a higher quality than the other two methods.

Highlights

  • Surface plasmons are charge-density waves that will propagate over the surfaces of metals and reflect from discontinuities in the electric permittivity of either the metal or the overlying dielectric.If a metal thin film has two parallel boundaries, the surface plasmon waves will reflect at particular frequencies

  • localized surface plasmon resonances (LSPRs) are the optical phenomena generated by light when they interact with conductive metals or nanoparticles (NPs) that are smaller than the incident wavelengths

  • The parameters used by the polystyrene (PS) nanospheres to form the masks of the nanosphere lithography (NSL) method were well investigated

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Summary

Introduction

Surface plasmons are charge-density waves that will propagate over the surfaces of metals and reflect from discontinuities in the electric permittivity of either the metal or the overlying dielectric. Brolo and co-workers were the first group to use arrays of sub-wavelength nanoholes in a gold thin film to monitor the binding of organic and biological molecules on a metallic surface [8] This technique is based on the enhanced transmission of surface plasmon resonances through nanoholes in a collinear optical arrangement. For the NSL method, the nano-scale PS nanospheres can be used as masks and the physical deposition methods can be used to deposit the metal thin films with the nanoparticle arrays. As the NSL method was used, only a few papers have reported the effects of the fabrication parameters of self-assembly nano-scale polystyrene (PS) nanospheres on the properties of the single-layer or hybrid multi-layer metal nanoparticle arrays [12,17]. Evaporation, radio-frequency (RF) magnetron sputtering, and e-gun deposition, respectively

Fabrication
A model of the triangle
Results and Discussion
Concentration of Nano-Scale
The results
Conclusions
Full Text
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