Optimization of multiplexed single-photon sources operated with photon-number-resolving detectors

Ferenc Bodog, Matyas Mechler, Matyas Koniorczyk, and Peter Adam
Phys. Rev. A 102, 013513 – Published 23 July 2020

Abstract

Detectors inherently capable of resolving photon numbers have undergone a significant development recently, and this is expected to affect multiplexed periodic single-photon sources where such detectors can find their applications. We analyze various spatially and time-multiplexed periodic single-photon source arrangements with photon-number-resolving detectors, partly to identify the cases when they outperform those with threshold detectors. We develop a full statistical description of these arrangements in order to optimize such systems with respect to maximal single-photon probability, taking into account all relevant loss mechanisms. The model is suitable for the description of all spatial and time multiplexing schemes. Our detailed analysis of symmetric spatial multiplexing identifies a particular range of loss parameters in which the use of the new type of detectors leads to an improvement. Photon number resolution opens an additional possibility for optimizing the system in that the heralding strategy can be defined in terms of actual detected photon numbers. Our results show that this kind of optimization opens an additional parameter range of improved efficiency. Moreover, this higher efficiency can be achieved by using less multiplexed units, i.e., smaller system size as compared to threshold-detector schemes. We also extend our investigation to certain time-multiplexed schemes of actual experimental relevance. We find that the highest single-photon probability is 0.907 that can be achieved by binary bulk time multiplexers using photon-number-resolving detectors.

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  • Received 25 March 2020
  • Accepted 6 July 2020

DOI:https://doi.org/10.1103/PhysRevA.102.013513

©2020 American Physical Society

Physics Subject Headings (PhySH)

Atomic, Molecular & Optical

Authors & Affiliations

Ferenc Bodog1, Matyas Mechler1, Matyas Koniorczyk2, and Peter Adam1,2,*

  • 1Institute of Physics, University of Pécs, Ifjúság útja 6, H-7624 Pécs, Hungary
  • 2Institute for Solid State Physics and Optics, Wigner Research Centre for Physics, P.O. Box 49, H-1525 Budapest, Hungary

  • *adam.peter@wigner.mta.hu

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Vol. 102, Iss. 1 — July 2020

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