Revising quantum optical phenomena in adatoms coupled to graphene nanoantennas

Graphene flakes acting as photonic nanoantennas may sustain strong electromagnetic field localization and enhancement. To exploit the field enhancement, quantum emitters such as atoms or molecules should be positioned in such close proximity to the flake that electron tunneling might influence the o...

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Published inNanophotonics (Berlin, Germany) Vol. 11; no. 14; pp. 3281 - 3298
Main Authors Kosik, Miriam, Müller, Marvin M., Słowik, Karolina, Bryant, Garnett, Ayuela, Andrés, Rockstuhl, Carsten, Pelc, Marta
Format Journal Article
LanguageEnglish
Published Germany De Gruyter 01.07.2022
Walter de Gruyter GmbH
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Summary:Graphene flakes acting as photonic nanoantennas may sustain strong electromagnetic field localization and enhancement. To exploit the field enhancement, quantum emitters such as atoms or molecules should be positioned in such close proximity to the flake that electron tunneling might influence the optical and electronic properties of the system. However, tunneling is usually not considered if the optical coupling mechanism between quantum emitters and nanoantennas is at focus. This work presents a framework for describing the electron dynamics in hybrid systems consisting of graphene nanoflakes coupled both electronically and optically to adatoms and subject to external illumination. Our framework combines the single-particle tight-binding approach with a nonlinear master equation formalism that captures both optical and electronic interactions. We apply the framework to demonstrate the impact of electron tunneling between the adatom and the flake on emblematic quantum optical phenomena: degradation of coherent Rabi oscillations and quenching of Purcell spontaneous emission enhancement in two-level adatoms in proximity of triangular graphene nanoflakes.
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ISSN:2192-8614
2192-8606
2192-8614
DOI:10.1515/nanoph-2022-0154