Quantum Dot Photoluminescence Enhancement in GaAs Nanopillar Oligomers Driven by Collective Magnetic Modes

Author:

Kroychuk Maria K.1,Shorokhov Alexander S.1ORCID,Yagudin Damir F.1,Rakhlin Maxim V.2ORCID,Klimko Grigorii V.2,Toropov Alexey A.2ORCID,Shubina Tatiana V.2,Fedyanin Andrey A.1ORCID

Affiliation:

1. Faculty of Physics, Lomonosov Moscow State University, 119991 Moscow, Russia

2. Ioffe Institute, 194021 St. Petersburg, Russia

Abstract

Single photon sources based on semiconductor quantum dots are one of the most prospective elements for optical quantum computing and cryptography. Such systems are often based on Bragg resonators, which provide several ways to control the emission of quantum dots. However, the fabrication of periodic structures with many thin layers is difficult. On the other hand, the coupling of single-photon sources with resonant nanoclusters made of high-index dielectric materials is known as a promising way for emission control. Our experiments and calculations show that the excitation of magnetic Mie-type resonance by linearly polarized light in a GaAs nanopillar oligomer with embedded InAs quantum dots leads to quantum emitters absorption efficiency enhancement. Moreover, the nanoresonator at the wavelength of magnetic dipole resonance also acts as a nanoantenna for a generated signal, allowing control over its radiation spatial profile. We experimentally demonstrated an order of magnitude emission enhancement and numerically reached forty times gain in comparison with unstructured film. These findings highlight the potential of quantum dots coupling with Mie-resonant oligomers collective modes for nanoscale single-photon sources development.

Funder

Russian Foundation for Basic Research

Council for Grants of the President of the Russian Federation

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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