Giant nonlinear interaction between two optical beams via a quantum dot embedded in a photonic wire

Optical nonlinearities usually appear for large intensities, but discrete transitions allow for giant nonlinearities operating at the single-photon level. This has been demonstrated in the last decade for a single optical mode with cold atomic gases, or single two-level systems coupled to light via...

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Veröffentlicht in:Physical review. B 2018-05, Vol.97 (20), Article 201106
Hauptverfasser: Nguyen, H. A., Grange, T., Reznychenko, B., Yeo, I., de Assis, P.-L., Tumanov, D., Fratini, F., Malik, N. S., Dupuy, E., Gregersen, N., Auffèves, A., Gérard, J.-M., Claudon, J., Poizat, J.-Ph
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Sprache:eng
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Zusammenfassung:Optical nonlinearities usually appear for large intensities, but discrete transitions allow for giant nonlinearities operating at the single-photon level. This has been demonstrated in the last decade for a single optical mode with cold atomic gases, or single two-level systems coupled to light via a tailored photonic environment. Here, we demonstrate a two-mode giant nonlinearity with a single semiconductor quantum dot (QD) embedded in a photonic wire antenna. We exploit two detuned optical transitions associated with the exciton-biexciton QD level scheme. Owing to the broadband waveguide antenna, the two transitions are efficiently interfaced with two free-space laser beams. The reflection of one laser beam is then controlled by the other beam, with a threshold power as low as 10 photons per exciton lifetime (1.6nW). Such a two-color nonlinearity opens appealing perspectives for the realization of ultralow-power logical gates and optical quantum gates, and could also be implemented in an integrated photonic circuit based on planar waveguides.
ISSN:2469-9950
2469-9969
DOI:10.1103/PhysRevB.97.201106