4.6 Article

Landau-damping-induced limits to light-matter interactions in sub-10-nm planar plasmonic nanocavities

Journal

OPTICS EXPRESS
Volume 29, Issue 24, Pages 39801-39810

Publisher

Optica Publishing Group
DOI: 10.1364/OE.443340

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Funding

  1. Samsung Electronics
  2. Samsung Global Research Outreach program

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This study theoretically analyzed the effects of Landau damping in sub-10-nm planar plasmonic nanocavities, revealing a reduction in quality factor, suppression in the Purcell factor, and decrease in spontaneous emission rate due to Landau damping.
Landau damping has previously been shown to be the dominant nonlocal effect in sub-10nm plasmonic nanostructures, although its effects on the performance of plasmonic nanocavities are still poorly understood. In this work, the effects of Landau damping in sub-10-nm planar plasmonic nanocavities are analyzed theoretically, and it is shown that while Landau damping does not affect the confinement of the cavity modes, it decreases the quality factor 10-fold due to the introduction of extra loss for sub-10nm gap sizes. As compared to purely classical models, this results in a suppression in the Purcell factor by 10 fold, the spontaneous emission rate by almost two orders of magnitude, and the required oscillator strength to achieve strong light-matter coupling by two orders of magnitude as the gap is reduced to similar to 0.5nm. Therefore, it is crucial to consider Landau damping in plasmonic-nanocavity design because it breaks the classical norm of achieving higher light-matter interaction strength in sub-10-nm gap-plasmon nanocavities. (C) 2021 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement

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