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Broadband, efficient extraction of quantum light by a photonic device comprised of a metallic nano-ring and a gold back reflector

Broadband, efficient extraction of quantum light by a photonic device comprised of a metallic nano-ring and a gold back reflector
Broadband, efficient extraction of quantum light by a photonic device comprised of a metallic nano-ring and a gold back reflector
To implement quantum light sources based on quantum emitters in applications, it is desirable to improve the extraction efficiency of single photons. In particular, controlling the directionality and solid angle of the emission are key parameters, for instance, to couple single photons into optical fibers and send the information encoded in quantum light over long distances, for quantum communication applications. In addition, fundamental studies of the radiative behavior of quantum emitters, including studies of coherence and blinking, benefit from such improved photon collection. Quantum dots grown via Stranski–Krastanov technique have shown to be good candidates for bright, coherent, indistinguishable quantum light emission. However, one of the challenges associated with these quantum light sources arises from the fact that the emission wavelengths can vary from one emitter to the other. To this end, broadband light extractors that do not rely on high-quality factor optical cavities would be desirable, so that no tuning between the quantum dot emission wavelength and the resonator used to increase the light extraction is needed. Here, we show that metallic nano-rings combined with gold back reflectors increase the collection efficiency of single photons, and we study the statistics of this effect when quantum dots are spatially randomly distributed within the nano-rings. We show an average increase in the brightness of about a factor 7.5, when comparing emitters within and outside the nano-rings, in devices with a gold back reflector, and we measure count rates exceeding 7 × 106 photons per second and single photon purities as high as 85% ± 1%. These results are important steps toward the realization of scalable, broadband, easy to fabricate sources of quantum light for quantum communication applications.
0003-6951
Haws, Cori
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Perez, Edgar
b70b1966-65d7-45a4-9ebc-14297ced4133
Davanco, Marcelo
cfacc6c8-a09b-4b66-95e5-074b69930d91
Song, Jin Dong
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Srinivasan, Kartik
419dfd1a-2440-44de-9530-7aaa9383bc15
Sapienza, Luca
a2e0cf6c-1f22-4a5a-87a2-ffab0e24e6ac
Haws, Cori
a9c80ee5-38e3-4701-9c42-14414d3dc087
Perez, Edgar
b70b1966-65d7-45a4-9ebc-14297ced4133
Davanco, Marcelo
cfacc6c8-a09b-4b66-95e5-074b69930d91
Song, Jin Dong
b00beeb7-a2e4-40db-ab22-d3fab6bb21a9
Srinivasan, Kartik
419dfd1a-2440-44de-9530-7aaa9383bc15
Sapienza, Luca
a2e0cf6c-1f22-4a5a-87a2-ffab0e24e6ac

Haws, Cori, Perez, Edgar, Davanco, Marcelo, Song, Jin Dong, Srinivasan, Kartik and Sapienza, Luca (2022) Broadband, efficient extraction of quantum light by a photonic device comprised of a metallic nano-ring and a gold back reflector. Applied Physics Letters, 120, [081103]. (doi:10.1063/5.0082347).

Record type: Article

Abstract

To implement quantum light sources based on quantum emitters in applications, it is desirable to improve the extraction efficiency of single photons. In particular, controlling the directionality and solid angle of the emission are key parameters, for instance, to couple single photons into optical fibers and send the information encoded in quantum light over long distances, for quantum communication applications. In addition, fundamental studies of the radiative behavior of quantum emitters, including studies of coherence and blinking, benefit from such improved photon collection. Quantum dots grown via Stranski–Krastanov technique have shown to be good candidates for bright, coherent, indistinguishable quantum light emission. However, one of the challenges associated with these quantum light sources arises from the fact that the emission wavelengths can vary from one emitter to the other. To this end, broadband light extractors that do not rely on high-quality factor optical cavities would be desirable, so that no tuning between the quantum dot emission wavelength and the resonator used to increase the light extraction is needed. Here, we show that metallic nano-rings combined with gold back reflectors increase the collection efficiency of single photons, and we study the statistics of this effect when quantum dots are spatially randomly distributed within the nano-rings. We show an average increase in the brightness of about a factor 7.5, when comparing emitters within and outside the nano-rings, in devices with a gold back reflector, and we measure count rates exceeding 7 × 106 photons per second and single photon purities as high as 85% ± 1%. These results are important steps toward the realization of scalable, broadband, easy to fabricate sources of quantum light for quantum communication applications.

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Accepted/In Press date: 3 February 2022
e-pub ahead of print date: 22 February 2022

Identifiers

Local EPrints ID: 479720
URI: http://eprints.soton.ac.uk/id/eprint/479720
ISSN: 0003-6951
PURE UUID: f3e07e0c-dbe6-4bc9-978b-f40c8f4490da
ORCID for Cori Haws: ORCID iD orcid.org/0000-0001-5669-5698

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Date deposited: 26 Jul 2023 16:53
Last modified: 17 Mar 2024 03:58

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Contributors

Author: Cori Haws ORCID iD
Author: Edgar Perez
Author: Marcelo Davanco
Author: Jin Dong Song
Author: Kartik Srinivasan
Author: Luca Sapienza

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