Monolayer transition metal dichalcogenides integrated in optical microcavities host exciton-polaritons as a hallmark of the strong light-matter coupling regime. Analogous concepts for hybrid light-matter systems employing spatially indirect excitons with a permanent electric dipole moment in heterobilayer crystals promise realizations of exciton-polariton gases and condensates with inherent dipolar interactions. Here, we implement cavity-control of interlayer excitons in vertical MoSe2-WSe2 heterostructures. Our experiments demonstrate the Purcell effect for heterobilayer emission in cavity-modified photonic environments, and quantify the light-matter coupling strength of interlayer excitons. The results will facilitate further developments of dipolar exciton-polariton gases and condensates in hybrid cavity – van der Waals heterostructure systems.
CITATION STYLE
Förg, M., Colombier, L., Patel, R. K., Lindlau, J., Mohite, A. D., Yamaguchi, H., … Högele, A. (2019). Cavity-control of interlayer excitons in van der Waals heterostructures. Nature Communications, 10(1). https://doi.org/10.1038/s41467-019-11620-z
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