Nanoscale continuous quantum light sources based on driven dipole emitter arrays

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Abstract

Regular arrays of two-level emitters at distances smaller than that of the transition wavelength collectively scatter, absorb, and emit photons. The strong inter-particle dipole coupling creates large energy shifts of the collective delocalized excitations, which generates a highly nonlinear response at the single and few photon level. This should allow us to implement nanoscale non-classical light sources via weak coherent illumination. At the generic tailored examples of regular chains or polygons, we show that the fields emitted perpendicular to the illumination direction exhibit a strong directional confinement with genuine quantum properties as antibunching. For short interparticle distances, superradiant directional emission can enhance the radiated intensity by an order of magnitude compared to a single atom focused to a strongly confined solid angle but still keeping the anti-bunching parameter at the level of com.elsevier.xml.ani.Math@38759e72

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Holzinger, R., Moreno-Cardoner, M., & Ritsch, H. (2021). Nanoscale continuous quantum light sources based on driven dipole emitter arrays. Applied Physics Letters, 119(2). https://doi.org/10.1063/5.0049270

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