Implementation of an efficient linear-optical quantum router
For several decades, scientists have been aware of significant benefits allowing quantum information processing technologies to surpass their classical counterparts. Recent technological development allows these benefits to be tested experimentally and in some cases also implemented in practical dev...
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Published in | Scientific reports Vol. 8; no. 1; p. 13480 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
London
Nature Publishing Group UK
07.09.2018
Nature Publishing Group |
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Abstract | For several decades, scientists have been aware of significant benefits allowing quantum information processing technologies to surpass their classical counterparts. Recent technological development allows these benefits to be tested experimentally and in some cases also implemented in practical devices. So far the majority of experimental quantum networks was limited to peer-to-peer communications between two parties. Practical implementation of quantum communications networks, however, needs to address the problem of scalability to serve large numbers of users. Similarly to classical computer networks, their quantum counterparts would require routing protocols to direct the signal from its source to destination. Devices implementing these routing protocols are called quantum routers and have recently been subject of an intense research. In this paper, we report on experimental implementation of a linear-optical quantum router. Our device allows single-photon polarization-encoded qubits to be routed coherently into two spatial output modes depending on the state of two identical control qubits. The polarization qubit state of the routed photon is maintained during the routing operation. The success probability of our scheme can be increased up to 25% making it the most efficient linear-optical quantum router developed to this date. |
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AbstractList | For several decades, scientists have been aware of significant benefits allowing quantum information processing technologies to surpass their classical counterparts. Recent technological development allows these benefits to be tested experimentally and in some cases also implemented in practical devices. So far the majority of experimental quantum networks was limited to peer-to-peer communications between two parties. Practical implementation of quantum communications networks, however, needs to address the problem of scalability to serve large numbers of users. Similarly to classical computer networks, their quantum counterparts would require routing protocols to direct the signal from its source to destination. Devices implementing these routing protocols are called quantum routers and have recently been subject of an intense research. In this paper, we report on experimental implementation of a linear-optical quantum router. Our device allows single-photon polarization-encoded qubits to be routed coherently into two spatial output modes depending on the state of two identical control qubits. The polarization qubit state of the routed photon is maintained during the routing operation. The success probability of our scheme can be increased up to 25% making it the most efficient linear-optical quantum router developed to this date. For several decades, scientists have been aware of significant benefits allowing quantum information processing technologies to surpass their classical counterparts. Recent technological development allows these benefits to be tested experimentally and in some cases also implemented in practical devices. So far the majority of experimental quantum networks was limited to peer-to-peer communications between two parties. Practical implementation of quantum communications networks, however, needs to address the problem of scalability to serve large numbers of users. Similarly to classical computer networks, their quantum counterparts would require routing protocols to direct the signal from its source to destination. Devices implementing these routing protocols are called quantum routers and have recently been subject of an intense research. In this paper, we report on experimental implementation of a linear-optical quantum router. Our device allows single-photon polarization-encoded qubits to be routed coherently into two spatial output modes depending on the state of two identical control qubits. The polarization qubit state of the routed photon is maintained during the routing operation. The success probability of our scheme can be increased up to 25% making it the most efficient linear-optical quantum router developed to this date.For several decades, scientists have been aware of significant benefits allowing quantum information processing technologies to surpass their classical counterparts. Recent technological development allows these benefits to be tested experimentally and in some cases also implemented in practical devices. So far the majority of experimental quantum networks was limited to peer-to-peer communications between two parties. Practical implementation of quantum communications networks, however, needs to address the problem of scalability to serve large numbers of users. Similarly to classical computer networks, their quantum counterparts would require routing protocols to direct the signal from its source to destination. Devices implementing these routing protocols are called quantum routers and have recently been subject of an intense research. In this paper, we report on experimental implementation of a linear-optical quantum router. Our device allows single-photon polarization-encoded qubits to be routed coherently into two spatial output modes depending on the state of two identical control qubits. The polarization qubit state of the routed photon is maintained during the routing operation. The success probability of our scheme can be increased up to 25% making it the most efficient linear-optical quantum router developed to this date. |
ArticleNumber | 13480 |
Author | Bartkiewicz, Karol Černoch, Antonín Lemr, Karel |
Author_xml | – sequence: 1 givenname: Karol orcidid: 0000-0002-5355-7756 surname: Bartkiewicz fullname: Bartkiewicz, Karol organization: Faculty of Physics, Adam Mickiewicz University, RCPTM, Joint Laboratory of Optics of Palacký University and Institute of Physics of Czech Academy of Sciences – sequence: 2 givenname: Antonín orcidid: 0000-0001-6331-286X surname: Černoch fullname: Černoch, Antonín organization: Institute of Physics of Czech Academy of Sciences, Joint Laboratory of Optics of Palacký University and Institute of Physics of Academy of Sciences of the Czech Republic – sequence: 3 givenname: Karel orcidid: 0000-0003-4371-3716 surname: Lemr fullname: Lemr, Karel email: k.lemr@upol.cz organization: RCPTM, Joint Laboratory of Optics of Palacký University and Institute of Physics of Czech Academy of Sciences |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/30194419$$D View this record in MEDLINE/PubMed |
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CitedBy_id | crossref_primary_10_1088_1674_1056_28_2_020301 crossref_primary_10_1103_PhysRevApplied_15_014049 crossref_primary_10_1109_TQE_2025_3542484 crossref_primary_10_1038_s41598_018_31273_0 crossref_primary_10_1103_PhysRevA_102_063712 crossref_primary_10_1063_5_0249909 crossref_primary_10_1103_PhysRevA_110_042615 crossref_primary_10_3390_e25010153 crossref_primary_10_1093_ptep_ptaa051 crossref_primary_10_1007_s11082_020_02701_1 crossref_primary_10_1109_MNET_2023_3317821 |
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Title | Implementation of an efficient linear-optical quantum router |
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