Nanoscale plasmonic slot waveguides for enhanced Raman spectroscopy

HMK Wong, MK Dezfouli, L Sun, S Hughes, AS Helmy - Physical Review B, 2018 - APS
Physical Review B, 2018APS
We theoretically investigate several types of plasmonic slot waveguides for enhancing the
detected signal in Raman spectroscopy, which is a consequence of electric field and Purcell
factor enhancements, as well as an increase in light-matter interaction volume and the
Raman signal collection efficiency. An intuitive methodology is presented for calculating the
accumulated Raman enhancement factor of an ensemble of molecules in waveguide
sensing, which exploits an analytical photon Green function expansion in terms of the …
Abstract
We theoretically investigate several types of plasmonic slot waveguides for enhancing the detected signal in Raman spectroscopy, which is a consequence of electric field and Purcell factor enhancements, as well as an increase in light-matter interaction volume and the Raman signal collection efficiency. An intuitive methodology is presented for calculating the accumulated Raman enhancement factor of an ensemble of molecules in waveguide sensing, which exploits an analytical photon Green function expansion in terms of the waveguide normal modes, and we combine this with a quantum optics formalism of the molecule-waveguide interaction to model Raman scattering. We subsequently show how integrated plasmonic slot waveguides can attain significantly higher Raman enhancement factors:∼ 5.3× compared to optofluidic fibers and∼ 3.7× compared to planar integrated dielectric waveguides, with a device size and thus analyte volume of at least three orders of magnitude less. We also provide a comprehensive comparison between the different types of plasmonic slot waveguides based on the important figures of merit, and determine the optimal approaches to maximize Raman enhancement.
American Physical Society