de Nijs Bart, Bowman Richard W, Herrmann Lars O, Benz Felix, Barrow Steve J, Mertens Jan, Sigle Daniel O, Chikkaraddy Rohit, Eiden Anna, Ferrari Andrea, Scherman Oren A, Baumberg Jeremy J
NanoPhotonics Centre, Cavendish Laboratory, Department of Physics, University of Cambridge, JJ Thompson Ave, Cambridge, CB3 0HE, UK.
Faraday Discuss. 2015;178:185-93. doi: 10.1039/c4fd00195h.
Plasmonic coupling of gold nanoparticles to a gold surface creates intense plasmonic hot spots with large electromagnetic field-enhancements within the cavity formed by the two metallic surfaces. The localised field in such structures is extremely sensitive to morphological fluctuations and subtle changes in the dielectric properties of the cavity contents. Here, we present an optical method that pins down the properties of the gap contents with high sensitivity, termed normalising plasmon resonance (NPR) spectroscopy. We use this on a variety of ultrathin molecular spacers such as filled and empty cucurbiturils, and graphene. Clear differences in the spectral positions and intensities of plasmonic modes observed in the scattering spectrum resolve thickness differences of 0.1 nm, and refractive index changes from molecular filling.
金纳米颗粒与金表面的等离子体耦合在由两个金属表面形成的腔内产生具有大电磁场增强的强烈等离子体热点。这种结构中的局部场对形态波动和腔内物质介电特性的细微变化极为敏感。在此,我们提出一种光学方法,该方法能够以高灵敏度确定间隙内容物的特性,称为归一化等离子体共振(NPR)光谱学。我们将此方法应用于各种超薄分子间隔物,如填充和未填充的葫芦脲以及石墨烯。在散射光谱中观察到的等离子体模式的光谱位置和强度的明显差异可分辨出0.1纳米的厚度差异以及分子填充引起的折射率变化。