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Au-WO3 Nanocomposite Coatings for Localized Surface Plasmon Resonance Sensing

机译:用于局部表面等离子体共振传感的Au-WO3纳米复合涂层

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摘要

Localized surface plasmon resonance (LSPR) gas sensors are gaining increasing importance due to their unique tuneable functional properties. Au-WO nanocomposite coatings, in particular, can be outstandingly sensitive to many different gases. However, a proper understanding of their optical properties and the way in which those properties are correlated to their structure/microstructure, is still needed. In this work, Au-WO nanocomposite coatings, with Au contents between 0–11 atomic percent, were grown using reactive magnetron co-sputtering technique and were characterized concerning their optical response. The precipitation of Au nanoparticles in the oxide matrix was promoted through thermal annealing treatments until 500 °C. Along with the Au nanoparticles’ morphological changes, the annealing treatments stimulated the crystallization of WO , together with the appearance of oxygen-deficient WO phases. Through theoretical simulations, we have related the LSPR effect with the different structural and morphological variations (namely, size and distribution of the nanoparticles and their local environment), which were a function of the Au content and annealing temperature. Our results suggest that local voids were present in the vicinity of the Au nanoparticles, for all temperature range, and that they should be present in a wide variety of Au-WO nanocomposites. A theoretical study concerning the refractive index sensitivity was carried out in order to predict the optimal coating design parameters for gas sensing experiments.
机译:局部表面等离子体共振(LSPR)气体传感器由于其独特的可调节功能特性而变得越来越重要。尤其是Au-WO纳米复合涂层,对许多不同的气体非常敏感。然而,仍然需要对它们的光学性质以及这些性质与其结构/微结构相关联的方式的正确理解。在这项工作中,使用反应磁控共溅射技术生长了Au含量在0-11原子百分比之间的Au-WO纳米复合涂层,并对其光学响应进行了表征。通过热退火处理直至500°C促进了Au纳米颗粒在氧化物基质中的沉淀。随着金纳米颗粒形态的变化,退火处理促进了WO的结晶以及缺氧的WO相的出现。通过理论模拟,我们将LSPR效应与不同的结构和形态变化(即纳米颗粒的尺寸和分布以及它们的局部环境)相关,这是Au含量和退火温度的函数。我们的结果表明,在所有温度范围内,局部空隙都存在于Au纳米颗粒附近,并且它们应该存在于各种各样的Au-WO纳米复合材料中。为了预测气体传感实验的最佳涂层设计参数,进行了有关折射率灵敏度的理论研究。

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