Department of Chemistry, National Institute for Nanotechnology, University of Alberta, Edmonton, Alberta T6G 2M9, Canada.
Chemphyschem. 2010 Aug 23;11(12):2539-45. doi: 10.1002/cphc.201000351.
A thin-film of dielectric on a reflecting surface constituting a multilayer substrate modulates light intensity due to the interference effect. A nanostructure consisting of randomly oriented silver particles of different shapes, sizes, and interparticle spacings supports multiple plasmon resonances and is observed to have a broad extinction spectrum that spans the entire visible region. Combining the two systems by fabricating the nanostructure on the thin-dielectric film of the multilayer substrate yields a new composite structure which is observed to modulate both the extinction spectrum and the SERS EF (surface enhanced Raman scattering enhancement factor) of the nanostructure as the thickness of the thin-film dielectric is varied. The frequency and intensity of the visible extinction spectrum vary dramatically with the dielectric thickness and in the intermediate thickness range the spectrum has no visible band. The SERS EF determined for the composite structure as a function of the thin-film dielectric thickness varies by several orders of magnitude. Strong correlation between the magnitude of the SERS EF and the extinction intensity is observed over the entire dielectric thickness range indicating that the extinction spectrum corresponds to the excitation of the plasmon resonances of the nanostructure. A significant finding which has potential applications is that the composite structure has synergic effect to boost SERS EF of the nanostructure by an order of magnitude or more compared to the same nanostructure on an unlayered substrate.
在构成多层基底的反射表面上的介电薄膜由于干涉效应而调制光强度。由不同形状、大小和颗粒间间隔的随机取向的银颗粒组成的纳米结构支持多个等离子体共振,并观察到具有横跨整个可见区域的宽消光谱。通过在多层基底的薄介电薄膜上制造纳米结构来组合这两个系统,得到一种新的复合结构,观察到该复合结构随着薄膜介电厚度的变化来调制纳米结构的消光谱和 SERS EF(表面增强拉曼散射增强因子)。可见消光谱的频率和强度随介电厚度剧烈变化,在中间厚度范围内,光谱没有可见带。作为薄膜介电厚度的函数确定的复合结构的 SERS EF 变化了几个数量级。在整个介电厚度范围内观察到 SERS EF 的幅度与消光强度之间存在很强的相关性,表明消光谱对应于纳米结构的等离子体共振的激发。一个具有潜在应用的重要发现是,与在无层状基底上的相同纳米结构相比,复合结构具有协同效应,可以将纳米结构的 SERS EF 提高一个数量级或更多。