Probing the Ultimate Plasmon Confinement Limits with a Van der Waals heterostructure
Abstract
The ability to confine light into tiny spatial dimensions is important for applications such as microscopy, sensing and nanoscale lasers. While plasmons offer an appealing avenue to confine light, Landau damping in metals imposes a trade-off between optical field confinement and losses. We show that a graphene-insulator-metal heterostructure can overcome that trade-off, and demonstrate plasmon confinement down to the ultimate limit of the lengthscale of one atom. This is achieved by far-field excitation of plasmon modes squeezed into an atomically thin hexagonal boron nitride dielectric h-BN spacer between graphene and metal rods. A theoretical model which takes into account the non-local optical response of both graphene and metal is used to describe the results. These ultra-confined plasmonic modes, addressed with far-field light excitation, enables a route to new regimes of ultra-strong light-matter interactions.
Cite
@article{arxiv.1804.01061,
title = {Probing the Ultimate Plasmon Confinement Limits with a Van der Waals heterostructure},
author = {David Alcaraz Iranzo and Sebastien Nanot and Eduardo J. C. Dias and Itai Epstein and Cheng Peng and Dmitri K. Efetov and Mark B. Lundeberg and Romain Parret and Johann Osmond and Jin-Yong Hong and Jing Kong and Dirk R. Englund and Nuno M. R. Peres and Frank H. L. Koppens},
journal= {arXiv preprint arXiv:1804.01061},
year = {2021}
}
Comments
17 pages, 4 figures