<div class="csl-bib-body">
<div class="csl-entry">Chang, K.-C., Sarihan, M. C., Li, N. K. H., Kanitschar, F., Akyuz, E., Chen, Y., Lee, D.-I., Kang, J. H., Aldhafeeri, A., Mueller, A., Shaw, M. D., Korzh, B., Spiropulu, M., Erker, P., Huber, M., & Wong, C. W. (2026). Unlocking the potential of high-dimensional quantum communication with scalable photonic entanglement in time and frequency. <i>Science Advances</i>, <i>12</i>(27). https://doi.org/10.1126/sciadv.aee1333</div>
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dc.identifier.issn
2375-2548
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/229265
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dc.description.abstract
High-dimensional photonic entanglement holds substantial promise for advancing quantum communication, computation, and metrology. For example, large-alphabet quantum communication protocols are known to benefit from enhanced noise resilience and information capacity via multibit time-bin encoding. Yet, characterizing high-dimensional entangled states is challenging, as full-state tomography becomes prohibitively costly and often requires unrealizable measurements. Here, we demonstrate a scan-free method to characterize high-dimensional entanglement in the time-frequency domain. Our reconstruction achieves a record 5.70 ± 0.07 ebits and a fidelity of 65.4 ± 0.4% with the maximally entangled state of local dimension 1021, certifying the presence of 668-dimensional entanglement. We further prove the attainability of a secure key rate of 15.6 kilobits per second in a composable finite-size, entanglement-based protocol and show that in continuous operation, the setup can quickly approach asymptotic key rates. Using commercial telecom components and state-of-the-art low-jitter single-photon detectors, our scalable architecture offers a practical path toward high-rate, noise-resilient quantum communication test beds.
en
dc.language.iso
en
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dc.publisher
American Association for the Advancement of Science (AAAS)
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dc.relation.ispartof
Science Advances
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dc.subject
Entanglement
en
dc.subject
QKD
en
dc.subject
Quantum Communication
en
dc.title
Unlocking the potential of high-dimensional quantum communication with scalable photonic entanglement in time and frequency
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dc.type
Article
en
dc.type
Artikel
de
dc.contributor.affiliation
PMA, Physics - California Institute of Technology (Pasadena, US)
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dc.type.category
Original Research Article
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tuw.container.volume
12
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tuw.container.issue
27
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tuw.journal.peerreviewed
true
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tuw.peerreviewed
true
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wb.publication.intCoWork
International Co-publication
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tuw.researchTopic.id
Q3
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tuw.researchTopic.id
Q1
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tuw.researchTopic.name
Quantum Modeling and Simulation
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tuw.researchTopic.name
Photonics
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tuw.researchTopic.value
50
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tuw.researchTopic.value
50
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dcterms.isPartOf.title
Science Advances
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tuw.publication.orgunit
E141-08 - Forschungsbereich Quantum Optics and Quantum Information