High-Dimensional Entanglement for Quantum Communication in the Frequency
Domain
- URL: http://arxiv.org/abs/2206.00969v2
- Date: Mon, 31 Jul 2023 17:34:50 GMT
- Title: High-Dimensional Entanglement for Quantum Communication in the Frequency
Domain
- Authors: Meritxell Cabrejo Ponce, Andr\'e Luiz Marques Muniz, Marcus Huber,
Fabian Steinlechner
- Abstract summary: High-dimensional photonic entanglement is a promising candidate for error-protected quantum information processing.
This study shows how to harness the large frequency-entanglement inherent in standard continuous-wave spontaneous down-conversion processes.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: High-dimensional photonic entanglement is a promising candidate for
error-protected quantum information processing with improved capacity. Encoding
high-dimensional qudits in the carrier frequency of photons combines ease of
generation, universal single-photon gates, and compatibility with fiber
transmission for high-capacity quantum communication. Recent landmark
experiments have impressively demonstrated quantum interference of a few
frequency modes, yet the certification of massive-dimensional frequency
entanglement has remained an open challenge. This study shows how to harness
the large frequency-entanglement inherent in standard continuous-wave
spontaneous parametric down-conversion processes. It further reports a record
certification of discretized frequency entanglement, combined with a novel
approach for certification that is both highly efficient and nonlocally
implementable. This technique requires very few measurements and does not
require assumptions on the state. The work opens the possibility for utilizing
this encoding in quantum communications and in quantum information science in
general.
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