Strongly enhanced light-matter coupling of monolayer WS 2 from a bound state in the continuum

Exciton-polaritons derived from the strong light-matter interaction of an optical bound state in the continuum with an excitonic resonance can inherit an ultralong radiative lifetime and significant nonlinearities, but their realization in two-dimensional semiconductors remains challenging at room t...

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Veröffentlicht in:Nature materials 2023-05
Hauptverfasser: Maggiolini, Eugenio, Polimeno, Laura, Todisco, Francesco, Di Renzo, Anna, Han, Bo, De Giorgi, Milena, Ardizzone, Vincenzo, Schneider, Christian, Mastria, Rosanna, Cannavale, Alessandro, Pugliese, Marco, De Marco, Luisa, Rizzo, Aurora, Maiorano, Vincenzo, Gigli, Giuseppe, Gerace, Dario, Sanvitto, Daniele, Ballarini, Dario
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Sprache:eng
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Zusammenfassung:Exciton-polaritons derived from the strong light-matter interaction of an optical bound state in the continuum with an excitonic resonance can inherit an ultralong radiative lifetime and significant nonlinearities, but their realization in two-dimensional semiconductors remains challenging at room temperature. Here we show strong light-matter interaction enhancement and large exciton-polariton nonlinearities at room temperature by coupling monolayer tungsten disulfide excitons to a topologically protected bound state in the continuum moulded by a one-dimensional photonic crystal, and optimizing for the electric-field strength at the monolayer position through Bloch surface wave confinement. By a structured optimization approach, the coupling with the active material is maximized here in a fully open architecture, allowing to achieve a 100 meV photonic bandgap with the bound state in the continuum in a local energy minimum and a Rabi splitting of 70 meV, which results in very high cooperativity. Our architecture paves the way to a class of polariton devices based on topologically protected and highly interacting bound states in the continuum.
ISSN:1476-4660
DOI:10.1038/s41563-023-01562-9