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Precision Synchronization for Free-Space Quantum NetworkingPrecision synchronization is vital for robust long-distance quantum networking over fiber and free-space channels for which high-fidelity entanglement swapping between separate sources via an optical Bell state measurement requires temporal overlap of photonic qubits arriving from either source. This challenge is particularly distinct in satellite-based entanglement distribution in which relative motion, channel effects, and propagation delay must be addressed. This work presents a precision synchronization method for free space entanglement distribution, and reports on risk reduction testing
in a quantum networking testbed at MIT Lincoln Laboratory. Primary consideration is for a dual-uplink architecture in which photons from entanglement sources at two ground locations interact in an optical Bell-state measurement implemented on a satellite in a low-earth orbit. The control approach uses independent entanglement sources at each ground location supplemented with a synchronization signal for feedback control from a timing discriminant measured at the spacecraft. The approach is being implemented in a laboratory testbed using 1-GHz repetition rate 1550-nm band entanglement sources generating ~10-MHz source entanglement rates with few-ps photon pulse lengths. The paper
describes both fundamental architectural considerations and practical implementation details.
Document ID
20220019087
Acquisition Source
Headquarters
Document Type
Conference Paper
Authors
Neal W. Spellmeyer
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Don M. Boroson
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
P. Benjamin Dixon
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Matthew E. Grein
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Nicholas D. Hardy
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Catherine Lee
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Ryan P. Murphy
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Hemonth G. Roa
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Marvin Scheinbart
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Katia Shtyrkova
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Mark L. Stevens
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Scott A Hamilton
(MIT Lincoln Laboratory Lexington, Massachusetts, United States)
Date Acquired
December 16, 2022
Subject Category
Space Communications, Spacecraft Communications, Command and Tracking
Meeting Information
Meeting: SPIE Photonics West
Location: San Francisco, CA
Country: US
Start Date: January 28, 2023
End Date: February 2, 2023
Sponsors: International Society for Optical Engineering
Funding Number(s)
CONTRACT_GRANT: NNG16VR06I
CONTRACT_GRANT: FA8702-15-D-0001
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
quantum
quantum networking
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