论文标题
在Kretschmann构型中的自组装配体的等离子Au纳米颗粒膜,用于传感挥发性有机化合物
Self-Assembled Ligand-Capped Plasmonic Au Nanoparticle Films in the Kretschmann Configuration for Sensing of Volatile Organic Compounds
论文作者
论文摘要
封闭的Au纳米颗粒的膜通过其集体等离子体共振在电动力上耦合。这种集体的光学响应导致增强的光线相互作用,可以在各种应用中利用。在这里,我们证明了它们在传感挥发性有机化合物中使用甲醇作为测试案例的应用。通过胶体Au纳米颗粒(〜10 nm直径)的界面自组装获得了几个CM2上的有序膜。即使这种大小的孤立纳米颗粒本质上是非散射的,但在封闭膜中排列时等离子耦合会导致强大的反射率和吸光度。首先证明了通过纳米颗粒膜的紫外线传输测量值对蒸气相浓度的原位跟踪。接下来,在Kretschmann(也称为ATR)构型中的自组装膜的原位椭圆法显示出具有增强的灵敏度,尤其是相差测量值。我们的研究表明,通过实验原位感应实验,自组装膜的光谱响应的理论模型之间的良好一致性。同时,理论框架为解释各种观察到的实验趋势的解释提供了基础。 Kretschmann配置中的周期性纳米颗粒膜与椭圆法相结合是一种有前途的策略,该策略是基于易挥发性有机化合物(VOC)感应应用的胶体制造方法高度敏感和选择性的胶卷薄膜设备。
Films of close-packed Au nanoparticles are coupled electrodynamically through their collective plasmon resonances. This collective optical response results in enhanced light-matter interactions, which can be exploited in various applications. Here, we demonstrate their application in sensing volatile organic compounds, using methanol as a test-case. Ordered films over several cm2 were obtained by interfacial self-assembly of colloidal Au nanoparticles (~10 nm diameter) through controlled evaporation of the solvent. Even though isolated nanoparticles of this size are inherently non-scattering, when arranged in a close-packed film the plasmonic coupling results in a strong reflectance and absorbance. The in-situ tracking of vapor phase methanol concentration through UV-Vis transmission measurements of the nanoparticle film is first demonstrated. Next, in-situ ellipsometry of the self-assembled films in the Kretschmann (also known as ATR) configuration is shown to yield enhanced sensitivity, especially with phase difference measurements. Our study shows the excellent agreement between theoretical models of the spectral response of self-assembled films with experimental in-situ sensing experiments. At the same time, the theoretical framework provides the basis for the interpretation of the various observed experimental trends. Combining periodic nanoparticle films with ellipsometry in the Kretschmann configuration is a promising strategy towards highly sensitive and selective plasmonic thin-film devices based on colloidal fabrication methods for volatile organic compound (VOC) sensing applications.