Bright room temperature single photon source at telecom range in cubic silicon carbide

Single-photon emitters (SPEs) play an important role in a number of quantum information tasks such as quantum key distributions. In these protocols, telecom wavelength photons are desired due to their low transmission loss in optical fibers. In this paper, we present a study of bright single-photon...

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Published inNature communications Vol. 9; no. 1; pp. 4106 - 6
Main Authors Wang, Junfeng, Zhou, Yu, Wang, Ziyu, Rasmita, Abdullah, Yang, Jianqun, Li, Xingji, von Bardeleben, Hans Jürgen, Gao, Weibo
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Abstract Single-photon emitters (SPEs) play an important role in a number of quantum information tasks such as quantum key distributions. In these protocols, telecom wavelength photons are desired due to their low transmission loss in optical fibers. In this paper, we present a study of bright single-photon emitters in cubic silicon carbide (3C-SiC) emitting in the telecom range. We find that these emitters are photostable and bright at room temperature with a count rate of ~ MHz. Altogether with the fact that SiC is a growth and fabrication-friendly material, our result may be relevant for future applications in quantum communication technology. Room-temperature solid-state single photon emitters in the telecom range are suitable for quantum communication. Here, the authors observe defects in high-purity 3C-SiC epitaxy layers grown on a silicon substrate, with good characteristics in terms of brightness, emission’s polarization and photostability.
AbstractList Single-photon emitters (SPEs) play an important role in a number of quantum information tasks such as quantum key distributions. In these protocols, telecom wavelength photons are desired due to their low transmission loss in optical fibers. In this paper, we present a study of bright single-photon emitters in cubic silicon carbide (3C-SiC) emitting in the telecom range. We find that these emitters are photostable and bright at room temperature with a count rate of ~ MHz. Altogether with the fact that SiC is a growth and fabrication-friendly material, our result may be relevant for future applications in quantum communication technology. Room-temperature solid-state single photon emitters in the telecom range are suitable for quantum communication. Here, the authors observe defects in high-purity 3C-SiC epitaxy layers grown on a silicon substrate, with good characteristics in terms of brightness, emission’s polarization and photostability.
Single-photon emitters (SPEs) play an important role in a number of quantum information tasks such as quantum key distributions. In these protocols, telecom wavelength photons are desired due to their low transmission loss in optical fibers. In this paper, we present a study of bright single-photon emitters in cubic silicon carbide (3C-SiC) emitting in the telecom range. We find that these emitters are photostable and bright at room temperature with a count rate of ~ MHz. Altogether with the fact that SiC is a growth and fabrication-friendly material, our result may be relevant for future applications in quantum communication technology.
Room-temperature solid-state single photon emitters in the telecom range are suitable for quantum communication. Here, the authors observe defects in high-purity 3C-SiC epitaxy layers grown on a silicon substrate, with good characteristics in terms of brightness, emission’s polarization and photostability.
Single-photon emitters (SPEs) play an important role in a number of quantum information tasks such as quantum key distributions. In these protocols, telecom wavelength photons are desired due to their low transmission loss in optical fibers. In this paper, we present a study of bright single-photon emitters in cubic silicon carbide (3C-SiC) emitting in the telecom range. We find that these emitters are photostable and bright at room temperature with a count rate of ~ MHz. Altogether with the fact that SiC is a growth and fabrication-friendly material, our result may be relevant for future applications in quantum communication technology.Single-photon emitters (SPEs) play an important role in a number of quantum information tasks such as quantum key distributions. In these protocols, telecom wavelength photons are desired due to their low transmission loss in optical fibers. In this paper, we present a study of bright single-photon emitters in cubic silicon carbide (3C-SiC) emitting in the telecom range. We find that these emitters are photostable and bright at room temperature with a count rate of ~ MHz. Altogether with the fact that SiC is a growth and fabrication-friendly material, our result may be relevant for future applications in quantum communication technology.
ArticleNumber 4106
Author von Bardeleben, Hans Jürgen
Yang, Jianqun
Zhou, Yu
Li, Xingji
Wang, Junfeng
Gao, Weibo
Wang, Ziyu
Rasmita, Abdullah
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Issue 1
Keywords Quantum information
Single photons and quantum effects
Language English
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  year: 2018
  text: 2018-10-05
  day: 05
PublicationDecade 2010
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PublicationTitle Nature communications
PublicationTitleAbbrev Nat Commun
PublicationTitleAlternate Nat Commun
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Nature Publishing Group
Nature Portfolio
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SSID ssj0000391844
Score 2.6008816
Snippet Single-photon emitters (SPEs) play an important role in a number of quantum information tasks such as quantum key distributions. In these protocols, telecom...
Room-temperature solid-state single photon emitters in the telecom range are suitable for quantum communication. Here, the authors observe defects in...
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StartPage 4106
SubjectTerms 140/125
639/624/400/3925
639/766/483/481
Emitters
Fabrication
Humanities and Social Sciences
multidisciplinary
Optical fibers
Optics
Photons
Physics
Quantum cryptography
Quantum phenomena
Quantum theory
Room temperature
Science
Science (multidisciplinary)
Silicon
Silicon carbide
Telecommunications
Transmission loss
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Title Bright room temperature single photon source at telecom range in cubic silicon carbide
URI https://link.springer.com/article/10.1038/s41467-018-06605-3
https://www.ncbi.nlm.nih.gov/pubmed/30291249
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Volume 9
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