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Photonic Quantum Computing
Frequency-Time Multiplexing for Near-Deterministic Generation of n-Photon Frequency-Bin States
arXiv
Authors: Alex Fischer, Nathan T. Arnold, Colin P. Lualdi, Kelsey Ortiz, Michael Gehl, Paul Davids, Kai Shinbrough, Nils T. Otterstrom
Year
2026
Paper ID
25862
Status
Preprint
Abstract Read
~2 min
Abstract Words
150
Citations
N/A
Abstract
One of the primary challenges of photonic quantum information processing is the on-demand preparation of multiple single-photon-level quantum states from probabilistic photon pair sources. Motivated by recent developments in frequency-bin-encoded photonic quantum information processing, here we consider active time multiplexing to generate n-photon states, where n single photons with n distinct frequencies occupy the same spatiotemporal mode. We devise an approach that uses optical quantum memories to manipulate the temporal mode of heralded single photons and an array of fiber Bragg grating reflectors to jointly manipulate the frequency and temporal modes of the photons, overlapping n photons in n separate frequency bins into a single spatiotemporal mode. We calculate multiphoton state generation rates that, accounting for loss, are realistically achievable with commercially available hardware. Using only a single free-space switchable delay loop for an optical quantum memory, this scheme could feasibly produce 8-photon states at an average rate of 1 kHz.
Why This Paper Matters
- This paper contributes to the Photonic Quantum Computing research area in the Quantum Articles archive.
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- One of the primary challenges of photonic quantum information processing is the on-demand preparation of multiple single-photon-level quantum states from probabilistic photon...
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