Fully on-chip photonic turnkey quantum source for entangled qubit/qudit state generation

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dc.identifier.uri http://dx.doi.org/10.15488/14159
dc.identifier.uri https://www.repo.uni-hannover.de/handle/123456789/14273
dc.contributor.author Mahmudlu, Hatam
dc.contributor.author Johanning, Robert
dc.contributor.author van Rees, Albert
dc.contributor.author Khodadad Kashi, Anahita
dc.contributor.author Epping, Jörn P.
dc.contributor.author Haldar, Raktim
dc.contributor.author Boller, Klaus-J.
dc.contributor.author Kues, Michael
dc.date.accessioned 2023-07-18T05:39:59Z
dc.date.available 2023-07-18T05:39:59Z
dc.date.issued 2023
dc.identifier.citation Mahmudlu, H.; Johanning, R.; van Rees, A.; Khodadad Kashi, A.; Epping, J.P. et al.: Fully on-chip photonic turnkey quantum source for entangled qubit/qudit state generation. In: Nature Photonics 17 (2023), S. 518-524. DOI: https://doi.org/10.1038/s41566-023-01193-1
dc.description.abstract Integrated photonics has recently become a leading platform for the realization and processing of optical entangled quantum states in compact, robust and scalable chip formats, with applications in long-distance quantum-secured communication, quantum-accelerated information processing and nonclassical metrology. However, the quantum light sources developed so far have relied on external bulky excitation lasers, making them impractical prototype devices that are not reproducible, hindering their scalability and transfer out of the laboratory into real-world applications. Here we demonstrate a fully integrated quantum light source that overcomes these challenges through the integration of a laser cavity, a highly efficient tunable noise suppression filter (>55 dB) exploiting the Vernier effect, and a nonlinear microring for entangled photon-pair generation through spontaneous four-wave mixing. The hybrid quantum source employs an electrically pumped InP gain section and a Si3N4 low-loss microring filter system, and demonstrates high performance parameters, that is, pair emission over four resonant modes in the telecom band (bandwidth of ~1 THz) and a remarkable pair detection rate of ~620 Hz at a high coincidence-to-accidental ratio of ~80. The source directly creates high-dimensional frequency-bin entangled quantum states (qubits/qudits), as verified by quantum interference measurements with visibilities up to 96% (violating Bell’s inequality) and by density matrix reconstruction through state tomography, showing fidelities of up to 99%. Our approach, leveraging a hybrid photonic platform, enables scalable, commercially viable, low-cost, compact, lightweight and field-deployable entangled quantum sources, quintessential for practical, out-of-laboratory applications such as in quantum processors and quantum satellite communications systems. eng
dc.language.iso eng
dc.publisher London [u.a.] : Nature Publ. Group
dc.relation.ispartofseries Nature Photonics 17 (2023)
dc.rights CC BY 4.0 Unported
dc.rights.uri https://creativecommons.org/licenses/by/4.0
dc.subject Costs eng
dc.subject Four wave mixing eng
dc.subject III-V semiconductors eng
dc.subject Indium phosphide eng
dc.subject Nitrogen compounds eng
dc.subject.ddc 530 | Physik
dc.title Fully on-chip photonic turnkey quantum source for entangled qubit/qudit state generation eng
dc.type Article
dc.type Text
dc.relation.essn 1749-4893
dc.relation.issn 1749-4885
dc.relation.doi https://doi.org/10.1038/s41566-023-01193-1
dc.bibliographicCitation.volume 17
dc.bibliographicCitation.firstPage 518
dc.bibliographicCitation.lastPage 524
dc.description.version publishedVersion
tib.accessRights frei zug�nglich


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