Two-photon quantum interference and entanglement at 2.1 μm

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Shashi Prabhakar
  • Taylor Shields
  • Adetunmise C. Dada
  • Mehdi Ebrahim
  • Gregor G. Taylor
  • Dmitry Morozov
  • Kleanthis Erotokritou
  • Shigehito Miki
  • Masahiro Yabuno
  • Hirotaka Terai
  • Corin Gawith
  • Michael Kues
  • Lucia Caspani
  • Robert H. Hadfield
  • Matteo Clerici

Externe Organisationen

  • University of Glasgow
  • Japan National Institute of Information and Communications Technology
  • Kobe University
  • Covesion Ltd.
  • University of Southampton
  • University of Strathclyde
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Aufsatznummereaay5195
FachzeitschriftScience advances
Jahrgang6
Ausgabenummer13
PublikationsstatusVeröffentlicht - 27 März 2020

Abstract

Quantum-enhanced optical systems operating within the 2- to 2.5-μm spectral region have the potential to revolutionize emerging applications in communications, sensing, and metrology. However, to date, sources of entangled photons have been realized mainly in the near-infrared 700- to 1550-nm spectral window. Here, using custom-designed lithium niobate crystals for spontaneous parametric down-conversion and tailored superconducting nanowire single-photon detectors, we demonstrate two-photon interference and polarization-entangled photon pairs at 2090 nm. These results open the 2- to 2.5-μm mid-infrared window for the development of optical quantum technologies such as quantum key distribution in next-generation mid-infrared fiber communication systems and future Earth-to-satellite communications.

ASJC Scopus Sachgebiete

Zitieren

Two-photon quantum interference and entanglement at 2.1 μm. / Prabhakar, Shashi; Shields, Taylor; Dada, Adetunmise C. et al.
in: Science advances, Jahrgang 6, Nr. 13, eaay5195, 27.03.2020.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Prabhakar, S, Shields, T, Dada, AC, Ebrahim, M, Taylor, GG, Morozov, D, Erotokritou, K, Miki, S, Yabuno, M, Terai, H, Gawith, C, Kues, M, Caspani, L, Hadfield, RH & Clerici, M 2020, 'Two-photon quantum interference and entanglement at 2.1 μm', Science advances, Jg. 6, Nr. 13, eaay5195. https://doi.org/10.1126/sciadv.aay5195
Prabhakar, S., Shields, T., Dada, A. C., Ebrahim, M., Taylor, G. G., Morozov, D., Erotokritou, K., Miki, S., Yabuno, M., Terai, H., Gawith, C., Kues, M., Caspani, L., Hadfield, R. H., & Clerici, M. (2020). Two-photon quantum interference and entanglement at 2.1 μm. Science advances, 6(13), Artikel eaay5195. https://doi.org/10.1126/sciadv.aay5195
Prabhakar S, Shields T, Dada AC, Ebrahim M, Taylor GG, Morozov D et al. Two-photon quantum interference and entanglement at 2.1 μm. Science advances. 2020 Mär 27;6(13):eaay5195. doi: 10.1126/sciadv.aay5195
Prabhakar, Shashi ; Shields, Taylor ; Dada, Adetunmise C. et al. / Two-photon quantum interference and entanglement at 2.1 μm. in: Science advances. 2020 ; Jahrgang 6, Nr. 13.
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abstract = "Quantum-enhanced optical systems operating within the 2- to 2.5-μm spectral region have the potential to revolutionize emerging applications in communications, sensing, and metrology. However, to date, sources of entangled photons have been realized mainly in the near-infrared 700- to 1550-nm spectral window. Here, using custom-designed lithium niobate crystals for spontaneous parametric down-conversion and tailored superconducting nanowire single-photon detectors, we demonstrate two-photon interference and polarization-entangled photon pairs at 2090 nm. These results open the 2- to 2.5-μm mid-infrared window for the development of optical quantum technologies such as quantum key distribution in next-generation mid-infrared fiber communication systems and future Earth-to-satellite communications.",
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AU - Prabhakar, Shashi

AU - Shields, Taylor

AU - Dada, Adetunmise C.

AU - Ebrahim, Mehdi

AU - Taylor, Gregor G.

AU - Morozov, Dmitry

AU - Erotokritou, Kleanthis

AU - Miki, Shigehito

AU - Yabuno, Masahiro

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AU - Gawith, Corin

AU - Kues, Michael

AU - Caspani, Lucia

AU - Hadfield, Robert H.

AU - Clerici, Matteo

N1 - Funding Information: M.C., S.P., R.H.H., and C.G. acknowledge the support from Innovate UK (project PEPE EP/R043299/1). M.C. and A.C.D. acknowledge the support from the UK Research and Innovation (UKRI) and the UK Engineering and Physical Sciences

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Y1 - 2020/3/27

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