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Main Authors: Motlagh, Ali Binai, Wilbur, Grant, Allam, Nour, Tolis, Giannis, Daw, Lilly, ONeal, S., Deppe, Dennis G., Hall, Kimberley C.
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2506.17445
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author Motlagh, Ali Binai
Wilbur, Grant
Allam, Nour
Tolis, Giannis
Daw, Lilly
ONeal, S.
Deppe, Dennis G.
Hall, Kimberley C.
author_facet Motlagh, Ali Binai
Wilbur, Grant
Allam, Nour
Tolis, Giannis
Daw, Lilly
ONeal, S.
Deppe, Dennis G.
Hall, Kimberley C.
contents We extend the recently developed NARP scheme for laser-triggered single-photon sources to the simultaneous excitation of multiple emitters with varying transition energies, laying the groundwork for wavelength-division multiplexing in quantum optical networks. Our Multi-NARP scheme does not rely on polarization filtering and thus enables the near-unity extraction efficiency of single photons from each quantum dot. Our approach also offers the advantages of robustness to variations in the laser pulse parameters and immunity to excitation-induced dephasing tied to electron-phonon coupling. We show that simultaneous triggering of at least 10 emitters is possible, enabling the development of high-bandwidth quantum networks.
format Preprint
id arxiv_https___arxiv_org_abs_2506_17445
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Multi-NARP Laser Driving Scheme for Multiplexed Quantum Networks
Motlagh, Ali Binai
Wilbur, Grant
Allam, Nour
Tolis, Giannis
Daw, Lilly
ONeal, S.
Deppe, Dennis G.
Hall, Kimberley C.
Quantum Physics
Mesoscale and Nanoscale Physics
Optics
We extend the recently developed NARP scheme for laser-triggered single-photon sources to the simultaneous excitation of multiple emitters with varying transition energies, laying the groundwork for wavelength-division multiplexing in quantum optical networks. Our Multi-NARP scheme does not rely on polarization filtering and thus enables the near-unity extraction efficiency of single photons from each quantum dot. Our approach also offers the advantages of robustness to variations in the laser pulse parameters and immunity to excitation-induced dephasing tied to electron-phonon coupling. We show that simultaneous triggering of at least 10 emitters is possible, enabling the development of high-bandwidth quantum networks.
title Multi-NARP Laser Driving Scheme for Multiplexed Quantum Networks
topic Quantum Physics
Mesoscale and Nanoscale Physics
Optics
url https://arxiv.org/abs/2506.17445