English

Extremely confined gap plasmon modes: when nonlocality matters

Mesoscale and Nanoscale Physics 2022-05-31 v1 Optics

Abstract

Historically, the field of plasmonics has been relying on the framework of classical electrodynamics, with the local-response approximation of material response being applied even when dealing with nanoscale metallic structures. However, when approaching the atomic-scale confinement of the electromagnetic radiation, mesoscopic effects are anticipated to become observable, e.g., those associated with the nonlocal electrodynamic surface response of the electron gas. We investigate nonlocal effects in propagating gap surface plasmon modes in ultrathin metal--dielectric--metal planar waveguides, exploiting monocrystalline gold flakes separated by atomic-layer-deposited aluminum oxide. We use scanning near-field optical microscopy to directly access the near-field of such confined gap plasmon modes and measure their dispersion relation (via their complex-valued propagation constants). We compare our experimental findings with the predictions of the generalized nonlocal optical response theory to unveil signatures of nonlocal damping, which becomes appreciable for smaller dielectric gaps.

Keywords

Cite

@article{arxiv.2111.07561,
  title  = {Extremely confined gap plasmon modes: when nonlocality matters},
  author = {Sergejs Boroviks and Zhan-Hong Lin and Vladimir A. Zenin and Mario Ziegler and Andrea Dellith and P. A. D. Gonçalves and Christian Wolff and Sergey I. Bozhevolnyi and Jer-Shing Huang and N. Asger Mortensen},
  journal= {arXiv preprint arXiv:2111.07561},
  year   = {2022}
}

Comments

Supporting information is available upon request to authors

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