Modulation of surface response in a single plasmonic nanoresonator.

Sci Adv

Nano-Optics and Biophotonics Group, Experimental Physics 5, Institute of Physics, University of Würzburg, Germany.

Published: September 2024

AI Article Synopsis

  • The study highlights that traditional light scattering analysis of plasmonic nanoparticles doesn't account for the finite thickness of real interfaces, which leads to unique surface effects due to quantum electron behavior.
  • By using electrical gating, the research investigates how charging single plasmonic nanoresonators affects light scattering, revealing that both resonance shifts and changes in resonance width can happen.
  • The findings suggest that these nonclassical surface responses could have significant applications in creating electrically controlled plasmonic devices and metasurfaces.

Article Abstract

Scattering of light by plasmonic nanoparticles is classically described using bulk material properties with infinitesimally thin boundaries. However, because of the quantum nature of electrons, real interfaces have finite thickness, leading to nonclassical surface effects that influence light scattering in small particles. Electrical gating offers a promising route to control and study these effects, as static screening charges reside at the boundary. We investigate the modulation of the surface response upon direct electrical charging of single plasmonic nanoresonators. By analyzing measured changes in light scattering within the framework of surface response functions, we find the resonance shift well accounted for by modulation of the classical in-plane surface current. Unexpectedly, we also observed a change in the resonance width, indicating reduced losses for negatively charged resonators. This effect is attributed to a nonclassical out-of-plane surface response, extending beyond pure spill-out effects. Our experiments pave the way for electrically driven plasmonic modulators and metasurfaces, leveraging control over nonclassical surface effects.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11378946PMC
http://dx.doi.org/10.1126/sciadv.adn5227DOI Listing

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