Single Photon Frequency Conversion for Frequency Multiplexed Quantum Networks in the Telecom Band
File version
Version of Record (VoR)
Author(s)
Cernansky, Robert
Haylock, Ben
Lobino, Mirko
Griffith University Author(s)
Primary Supervisor
Other Supervisors
Editor(s)
Date
Size
File type(s)
Location
License
Abstract
High-speed long-range quantum communication requires combining frequency multiplexed photonic channels with quantum memories. We experimentally demonstrate an integrated quantum frequency conversion protocol that can convert between wavelength division multiplexing channels in the telecom range with an efficiency of 55±8% and a noise subtracted Hong-Ou-Mandel (HOM) dip visibility of 84.5%. This protocol is based on a cascaded second order nonlinear interaction and can be used to interface a broad spectrum of frequencies with narrowband quantum memories, or alternatively as a quantum optical transponder, efficiently interfacing different regions of a frequency-multiplexed spectrum.
Journal Title
Physical Review Letters
Conference Title
Book Title
Edition
Volume
127
Issue
2
Thesis Type
Degree Program
School
Publisher link
Patent number
Funder(s)
Grant identifier(s)
Rights Statement
Rights Statement
© 2021 American Physical Society. The attached file is reproduced here in accordance with the copyright policy of the publisher. Please refer to the journal's website for access to the definitive, published version.
Item Access Status
Note
Access the data
Related item(s)
Subject
Mathematical sciences
Physical sciences
Engineering
Science & Technology
Physical Sciences
Physics, Multidisciplinary
Physics
EFFICIENT
Persistent link to this record
Citation
Fisher, P; Cernansky, R; Haylock, B; Lobino, M, Single Photon Frequency Conversion for Frequency Multiplexed Quantum Networks in the Telecom Band, Physical Review Letters, 2021, 127 (2), pp. 023602