Efficient nano-photonic antennas based on dark states in quantum emitter rings

Author:

Moreno-Cardoner Maria12,Holzinger Raphael1,Ritsch Helmut1ORCID

Affiliation:

1. Universität Innsbruck

2. Universitat de Barcelona

Abstract

Nanoscopic arrays of quantum emitters can feature highly sub-radiant collective excitations with a lifetime exponentially growing with emitter number. Adding an absorptive impurity as an energy dump in the center of a ring shaped polygon allows to exploit this feature to create highly efficient single photon antennas. Here among regular polygons with an identical center absorbing emitter, a nonagon exhibits a distinct optimum of the absorption efficiency. This special enhancement originates from the unique emergence of a subradiant eigenstate with dominant center occupation. Only for nine emitters the sum of coupling strengths of each emitter to all others matches the center to the ring coupling. Analogous to a parabolic mirror the antenna ring then concentrates incoming radiation at its center without being significantly excited itself. Similar large efficiency enhancements, which even prevail for broadband excitation, can also be engineered for other antenna sizes by tailoring the frequency and magnitude of the central absorber. Interestingly, for very small structures a quantum treatment predicts an even stronger enhancement for the single photon absorption enhancement than a classical dipole model. As natural light harvesting structures are often based on ring shaped structures, the underlying principle might be exploited there as well.

Funder

Austrian Science Fund

H2020 Marie Skłodowska-Curie Actions

Bundesministerium für Bildung, Wissenschaft und Forschung

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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