Intrinsically chiral exciton polaritons in an atomically-thin semiconductor
Matthias J. Wurdack, Ivan Iorsh, Sarka Vavreckova, Tobias Bucher, Mateusz Kr\'ol, Zlata Fedorova, Eliezer Estrecho, Sebastian Klimmer, Larionette P. L. Mawlong, Huachun Deng, Qinghai Song, Timothy van der Laan, Giancarlo Soavi, Thomas Pertsch, Falk Eilenberger, Isabelle Staude

TL;DR
This paper demonstrates the creation of intrinsically chiral, valley-selective exciton polaritons in atomically-thin TMDCs using chiral BICs, enhancing circular polarisation and enabling control over spin states for quantum photonics.
Contribution
It introduces a novel approach to generate chiral exciton polaritons in 2D semiconductors via chiral BICs, revealing new insights into their energy relaxation and polarization control.
Findings
Observation of circularly polarised photoluminescence at two energy levels.
Order of magnitude increase in PL intensity and polarization degree.
Control of polariton spin states through optical excitation.
Abstract
Photonic bound states in the continuum (BICs) have emerged as a versatile tool for enhancing light-matter interactions by strongly confining light fields. Chiral BICs are photonic resonances with a high degree of circular polarisation, which hold great promise for spin-selective applications in quantum optics and nanophotonics. Here, we demonstrate a novel application of a chiral BIC for inducing strong coupling between the circularly polarised photons and spin-polarised (valley) excitons (bound electron-hole pairs) in atomically-thin transition metal dichalcogenide crystals (TMDCs). By placing monolayer WS onto the BIC-hosting metasurface, we observe the formation of intrinsically chiral, valley-selective exciton polaritons, evidenced by circularly polarised photoluminescence (PL) at two distinct energy levels. The PL intensity and degree of circular polarisation of polaritons…
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Taxonomy
TopicsStrong Light-Matter Interactions · Molecular Junctions and Nanostructures · Mechanical and Optical Resonators
