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斜角沉积法制备的多孔 Au-TiO 薄膜的纳米等离子体响应。

Nanoplasmonic response of porous Au-TiO thin films prepared by oblique angle deposition.

机构信息

Centro de Física da Universidade do Minho, Campus de Gualtar, Braga, Portugal.

出版信息

Nanotechnology. 2019 May 31;30(22):225701. doi: 10.1088/1361-6528/ab068e. Epub 2019 Feb 12.

Abstract

In this work, a versatile method is proposed to increase the sensitivity of optical sensors based on the localized surface plasmon resonance (LSPR) phenomenon. It combines a physical deposition method with the oblique angle deposition technique, allowing the preparation of plasmonic thin films with tailored porosity. Thin films of Au-TiO were deposited by reactive magnetron sputtering in a 3D nanostructure (zigzag growth), at different incidence angles (0° ≤ α ≤ 80°), followed by in-air thermal annealing at 400 °C to induce the growth of the Au nanoparticles. The roughness and surface porosity suffered a gradual increment by increasing the incidence angle. The resulting porous zigzag nanostructures that were obtained also decreased the principal refractive indexes (RIs) of the matrix and favoured the diffusion of Au through grain boundaries, originating broader nanoparticle size distributions. The transmittance minimum of the LSPR band appeared at around 600 nm, leading to a red-shift to about 626 nm for the highest incidence angle α = 80°, due to the presence of larger (scattering) nanoparticles. It is demonstrated that zigzag nanostructures can enhance adsorption sites for LSPR sensing by tailoring the porosity of the thin films. Atmosphere controlled transmittance-LSPR measurements showed that the RI sensitivity of the films is improved for higher incidence angles.

摘要

在这项工作中,提出了一种通用的方法来提高基于局域表面等离子体共振(LSPR)现象的光学传感器的灵敏度。它结合了物理沉积方法和斜角沉积技术,允许制备具有定制孔隙率的等离子体薄膜。通过反应磁控溅射在不同入射角(0°≤α≤80°)下在 3D 纳米结构(锯齿形生长)中沉积 Au-TiO 薄膜,然后在空气中 400°C 进行热退火以诱导 Au 纳米颗粒的生长。随着入射角的增加,粗糙度和表面孔隙率逐渐增加。由此获得的多孔锯齿形纳米结构还降低了基质的主要折射率(RI),并有利于 Au 通过晶界扩散,产生更宽的纳米颗粒尺寸分布。LSPR 带的透射最小值出现在约 600nm 处,对于最高入射角α=80°,导致红移到约 626nm,这是由于存在更大的(散射)纳米颗粒。证明锯齿形纳米结构可以通过调整薄膜的孔隙率来增强 LSPR 传感的吸附位点。气氛控制的透射率-LSPR 测量表明,对于更高的入射角,薄膜的 RI 灵敏度得到提高。

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