English

Ultra-Confinement of Polaritons in Single Atomic Layer Ag Photonic Quantum Dots

Materials Science 2026-05-21 v1 Mesoscale and Nanoscale Physics Optics

Abstract

Light scattering by two-dimensional (2D) van der Waals heterostructures (vdWHs) is immense, especially given their infinitesimal volume, thus enabling strong light-matter interactions. Surface 2D polariton waves manifest through large concentration of electromagnetic field in vertical direction, normal to their propagation. By confining vdWH materials into 2D photonic shapes, one can manipulate and compress light in lateral directions. Scattering-type scanning near-field optical microscopy is a perfect tool for direct imaging of the propagating polaritons and studying the properties of confined polaritons in nanostructures. Though, thus far the quantitative analysis, such the wavelength extraction, has been challenged for confined polaritons by incapability of mapping of the wave period on sub-wavelength scale and difficulty of identifying an adequate substrate's "background" to subtract. Here, an analytical approach is developed to reveal the local propagation constant of confined polaritons under abovementioned constraints and map it with the sub-wavelength resolution. Applied to analysis of the SiC/2D-Ag/EG (epitaxial graphene) photonic nanostructures, the technique uncovered that the polaritons are highly confined in both vertical (λ\sim\lambda/50) and lateral directions (λ\sim\lambda/40) by 2D metal.

Keywords

Cite

@article{arxiv.2605.21345,
  title  = {Ultra-Confinement of Polaritons in Single Atomic Layer Ag Photonic Quantum Dots},
  author = {Xinyi Li and Tetyana Ignatova and Chengye Dong and Krishnan Mekkanamkulam Ananthanarayanan and Rinu Abraham Maniyara and Arpit Jain and Furkan Turker and Vinay Kammarchedu and Aida Ebrahimi and Joshua A. Robinson and Slava V. Rotkin},
  journal= {arXiv preprint arXiv:2605.21345},
  year   = {2026}
}