학술논문

Near-unity Raman β-factor of surface-enhanced Raman scattering in a waveguide
Document Type
Article
Source
Nature Nanotechnology; December 2022, Vol. 17 Issue: 12 p1251-1257, 7p
Subject
Language
ISSN
17483387; 17483395
Abstract
The Raman scattering of light by molecular vibrations is a powerful technique to fingerprint molecules through their internal bonds and symmetries. Since Raman scattering is weak1, methods to enhance, direct and harness it are highly desirable, and this has been achieved using optical cavities2, waveguides3–6and surface-enhanced Raman scattering (SERS)7–9. Although SERS offers dramatic enhancements2,6,10,11by localizing light within vanishingly small hot-spots in metallic nanostructures, these tiny interaction volumes are only sensitive to a few molecules, yielding weak signals12. Here we show that SERS from 4-aminothiophenol molecules bonded to a plasmonic gap waveguide is directed into a single mode with >99% efficiency. Although sacrificing a confinement dimension, we find a SERS enhancement of ~103times across a broad spectral range enabled by the waveguide’s larger sensing volume and non-resonant waveguide mode. Remarkably, this waveguide SERS is bright enough to image Raman transport across the waveguides, highlighting the role of nanofocusing13–15and the Purcell effect16. By analogy to the β-factor from laser physics10,17–20, the near-unity Raman β-factor we observe exposes the SERS technique to alternative routes for controlling Raman scattering. The ability of waveguide SERS to direct Raman scattering is relevant to Raman sensors based on integrated photonics7–9with applications in gas sensing and biosensing.