Quantum channel correction outperforming direct transmission

Fuente: arXiv
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Bibliographic Details
Main Authors: Slussarenko, Sergei, Weston, Morgan M., Shalm, Lynden K., Verma, Varun B., Nam, Sae-Woo, Kocsis, Sacha, Ralph, Timothy C., Pryde, Geoff J.
Format: Preprint
Published: 2024
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author Slussarenko, Sergei
Weston, Morgan M.
Shalm, Lynden K.
Verma, Varun B.
Nam, Sae-Woo
Kocsis, Sacha
Ralph, Timothy C.
Pryde, Geoff J.
author_facet Slussarenko, Sergei
Weston, Morgan M.
Shalm, Lynden K.
Verma, Varun B.
Nam, Sae-Woo
Kocsis, Sacha
Ralph, Timothy C.
Pryde, Geoff J.
contents Long-distance optical quantum channels are necessarily lossy, leading to errors in transmitted quantum information, entanglement degradation and, ultimately, poor protocol performance. Quantum states carrying information in the channel can be probabilistically amplified to compensate for loss, but are destroyed when amplification fails. Quantum correction of the channel itself is therefore required, but break-even performance -- where arbitrary states can be better transmitted through a corrected channel than an uncorrected one -- has so far remained out of reach. Here we perform distillation by heralded amplification to improve a noisy entanglement channel. We subsequently employ entanglement swapping to demonstrate that arbitrary quantum information transmission is unconditionally improved -- i.e. without relying on postselection or post-processing of data -- compared to the uncorrected channel. In this way, it represents realisation of a genuine quantum relay. Our channel correction for single-mode quantum states will find use in quantum repeater, communication and metrology applications.
format Preprint
id arxiv_https___arxiv_org_abs_2406_04661
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Quantum channel correction outperforming direct transmission
Slussarenko, Sergei
Weston, Morgan M.
Shalm, Lynden K.
Verma, Varun B.
Nam, Sae-Woo
Kocsis, Sacha
Ralph, Timothy C.
Pryde, Geoff J.
Quantum Physics
Optics
Long-distance optical quantum channels are necessarily lossy, leading to errors in transmitted quantum information, entanglement degradation and, ultimately, poor protocol performance. Quantum states carrying information in the channel can be probabilistically amplified to compensate for loss, but are destroyed when amplification fails. Quantum correction of the channel itself is therefore required, but break-even performance -- where arbitrary states can be better transmitted through a corrected channel than an uncorrected one -- has so far remained out of reach. Here we perform distillation by heralded amplification to improve a noisy entanglement channel. We subsequently employ entanglement swapping to demonstrate that arbitrary quantum information transmission is unconditionally improved -- i.e. without relying on postselection or post-processing of data -- compared to the uncorrected channel. In this way, it represents realisation of a genuine quantum relay. Our channel correction for single-mode quantum states will find use in quantum repeater, communication and metrology applications.
title Quantum channel correction outperforming direct transmission
topic Quantum Physics
Optics
url https://arxiv.org/abs/2406.04661