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Two-photon interference at telecom wavelengths for time-bin-encoded single photons from quantum-dot spin qubits

Authors :
Michael G. Tanner
Martin Kamp
Eisuke Abe
Jason S. Pelc
Chandra M. Natarajan
Martin M. Fejer
Carsten Langrock
Sebastian Maier
Leo Yu
Christian Schneider
Tomoyuki Horikiri
Yoshihisa Yamamoto
Robert H. Hadfield
Sven Höfling
University of St Andrews. School of Physics and Astronomy
University of St Andrews. Condensed Matter Physics
Source :
Nature Communications
Publication Year :
2015
Publisher :
Springer Science and Business Media LLC, 2015.

Abstract

Practical quantum communication between remote quantum memories rely on single photons at telecom wavelengths. Although spin-photon entanglement has been demonstrated in atomic and solid-state qubit systems, the produced single photons at short wavelengths and with polarization encoding are not suitable for long-distance communication, because they suffer from high propagation loss and depolarization in optical fibres. Establishing entanglement between remote quantum nodes would further require the photons generated from separate nodes to be indistinguishable. Here, we report the observation of correlations between a quantum-dot spin and a telecom single photon across a 2-km fibre channel based on time-bin encoding and background-free frequency downconversion. The downconverted photon at telecom wavelengths exhibits two-photon interference with another photon from an independent source, achieving a mean wavepacket overlap of greater than 0.89 despite their original wavelength mismatch (900 and 911 nm). The quantum-networking operations that we demonstrate will enable practical communication between solid-state spin qubits across long distances.<br />Quantum communication requires quantum correlations between the information processing units and the information carrying units. Here, the authors use time-bin encoding and frequency downconversion to telecom wavelengths to achieve kilometre-scale spin-photon correlations.

Details

ISSN :
20411723
Volume :
6
Database :
OpenAIRE
Journal :
Nature Communications
Accession number :
edsair.doi.dedup.....b744c5628b4af6401c9f8ad987ed6599
Full Text :
https://doi.org/10.1038/ncomms9955