Cavity-mediated exciton hopping in a dielectrically engineered polariton system

L Lukas Husel F Farsane Tabataba-Vakili J Johannes Scherzer L Lukas Krelle I Ismail Bilgin S Samarth Vadia K Kenji Watanabe T Takashi Taniguchi I Iacopo Carusotto A Alexander Högele

Abstract

Abstract Exciton-polaritons – coherently hybridized states of excitons and photons – are instrumental for solid-state nonlinear optics and quantum simulations. To enable engineered polariton energy landscapes and interactions, local control over the particle-like states can be achieved by tuning the properties of the exciton constituent. Monolayer transition metal dichalcogenides stand out in this respect, as they readily allow for a deterministic, flexible and scalable control of excitons, and thus of hybrid exciton-polaritons, via environmental dielectric engineering. Here, we demonstrate the realization of mesoscopic exciton-polariton domains in a structured dielectric exciton environment, and establish an effective long-range exciton hopping in the dispersive regime of cavity-coupling. Our results represent a crucial step toward interacting polaritonic networks and quantum simulations in exciton-polariton lattices based on dielectrically tailored two-dimensional semiconductors.

Article Details

Volume / Issue Vol. 17, Issue 1
Published April 24, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (10)

L

Lukas Husel

F

Farsane Tabataba-Vakili

J

Johannes Scherzer

L

Lukas Krelle

I

Ismail Bilgin

S

Samarth Vadia

K

Kenji Watanabe

T

Takashi Taniguchi

I

Iacopo Carusotto

A

Alexander Högele