English

Plasmonic Hot Electron Transport Driven Site-Specific Surface-Chemistry with Nanoscale Spatial Resolution

Mesoscale and Nanoscale Physics 2016-07-20 v1 Chemical Physics Optics

Abstract

Nanoscale localization of electromagnetic fields near metallic nanostructures underpins the fundamentals and applications of plasmonics. The unavoidable energy loss from plasmon decay, initially seen as a detriment, has now expanded the scope of plasmonic applications to exploit the generated hot carriers. However, quantitative understanding of the spatial localization of these hot carriers, akin to electromagnetic near-field maps, has been elusive. Here we spatially map hot-electron-driven reduction chemistry with 15 nanometre resolution as a function of time and electromagnetic field polarization for different plasmonic nanostructures. We combine experiments employing a six-electron photo-recycling process that modify the terminal group of a self-assembled monolayer on plasmonic silver nanoantennas, with theoretical predictions from first-principles calculations of non-equilibrium hot-carrier transport in these systems. The resulting localization of reactive regions, determined by hot carrier transport from high-field regions, paves the way for hot-carrier extraction science and nanoscale regio-selective surface chemistry.

Keywords

Cite

@article{arxiv.1607.05657,
  title  = {Plasmonic Hot Electron Transport Driven Site-Specific Surface-Chemistry with Nanoscale Spatial Resolution},
  author = {Emiliano Cortés and Wei Xie and Javier Cambiasso and Adam S. Jermyn and Ravishankar Sundararaman and Prineha Narang and Sebastian Schlücker and Stefan A. Maier},
  journal= {arXiv preprint arXiv:1607.05657},
  year   = {2016}
}

Comments

18 pages, 5 figures

R2 v1 2026-06-22T14:58:43.120Z