Department of Electrical and Computer Engineering, Texas A&M University, College Station, Texas 77843-3128, USA.
Opt Lett. 2011 Aug 15;36(16):3082-4. doi: 10.1364/OL.36.003082.
We numerically investigate the optical field enhancement based on gap surface plasmon polaritons (GSPPs) that are enhanced by propagating surface waves launched by a circular slit at a metal-dielectric interface. The optical field enhancement originates not only from multiple scattering and coupling of GSPPs in the spacer region between two metal layers but also from propagating surface plasmon polaritons (SPPs) launched by a circular plasmonic lens. We find that the combination of the GSPPs and the propagating SPPs launched by the plasmonic lens can achieve extremely strong field confinement, and we find that the surface-enhanced Raman scattering (SERS) enhancement factor can be up to 10(15) at the tip of the equilateral triangular nanostructures. The structure proposed here is expected to find promising applications where strong field enhancement is desired, such as optical sensing with the SERS effect.
我们通过数值方法研究了基于间隙表面等离激元(GSPP)的光场增强,这种增强是由金属-介质界面上的圆形狭缝传播的表面波激发的。光场增强不仅源于两个金属层之间的间隔区域中 GSPP 的多次散射和耦合,还源于由圆形等离子体透镜激发的传播表面等离激元(SPP)。我们发现,GSPP 和等离子体透镜激发的传播 SPP 的组合可以实现极强的场限制,并且我们发现等边三角形纳米结构尖端的表面增强拉曼散射(SERS)增强因子可达 10(15)。这里提出的结构有望在需要强场增强的应用中找到应用前景,例如具有 SERS 效应的光学传感。