Dynamic modulated single-photon routing
The dynamic control of single-photon scattering in a pair of one-dimensional waveguides mediated by a time-modulated atom–cavity system is investigated. Two cases, where the waveguides are coupled symmetrically or asymmetrically to the atom–cavity system, are discussed in detail. The results show th...
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Published in | Chinese physics B Vol. 32; no. 12; pp. 124203 - 378 |
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Main Authors | , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Chinese Physical Society and IOP Publishing Ltd
01.12.2023
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Online Access | Get full text |
ISSN | 1674-1056 2058-3834 2058-3834 |
DOI | 10.1088/1674-1056/acf662 |
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Abstract | The dynamic control of single-photon scattering in a pair of one-dimensional waveguides mediated by a time-modulated atom–cavity system is investigated. Two cases, where the waveguides are coupled symmetrically or asymmetrically to the atom–cavity system, are discussed in detail. The results show that such time-modulated atom–cavity configuration can behave as a dynamical tunable directional single-photon router. The photons with different frequencies can dynamically be routed from the incident waveguide into any ports of the other with a 100% probability via adjusting the modulated amplitude or phases of the time-modulated atom–cavity coupling strengths, associate with the help of the asymmetrical waveguide–cavity couplings. Furthermore, the influence of dissipation on the routing capability is investigated. It is shown that the present single-photon router is robust against the dissipative process of the system, especially the atomic dissipation. These results are expected to be applicable in quantum information processing and design quantum devices with dynamical modulation. |
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AbstractList | The dynamic control of single-photon scattering in a pair of one-dimensional waveguides mediated by a time-modulated atom-cavity system is investigated.Two cases,where the waveguides are coupled symmetrically or asym-metrically to the atom-cavity system,are discussed in detail.The results show that such time-modulated atom-cavity configuration can behave as a dynamical tunable directional single-photon router.The photons with different frequencies can dynamically be routed from the incident waveguide into any ports of the other with a 100%probability via adjusting the modulated amplitude or phases of the time-modulated atom-cavity coupling strengths,associate with the help of the asymmetrical waveguide-cavity couplings.Furthermore,the influence of dissipation on the routing capability is investi-gated.It is shown that the present single-photon router is robust against the dissipative process of the system,especially the atomic dissipation.These results are expected to be applicable in quantum information processing and design quantum devices with dynamical modulation. The dynamic control of single-photon scattering in a pair of one-dimensional waveguides mediated by a time-modulated atom–cavity system is investigated. Two cases, where the waveguides are coupled symmetrically or asymmetrically to the atom–cavity system, are discussed in detail. The results show that such time-modulated atom–cavity configuration can behave as a dynamical tunable directional single-photon router. The photons with different frequencies can dynamically be routed from the incident waveguide into any ports of the other with a 100% probability via adjusting the modulated amplitude or phases of the time-modulated atom–cavity coupling strengths, associate with the help of the asymmetrical waveguide–cavity couplings. Furthermore, the influence of dissipation on the routing capability is investigated. It is shown that the present single-photon router is robust against the dissipative process of the system, especially the atomic dissipation. These results are expected to be applicable in quantum information processing and design quantum devices with dynamical modulation. |
Author | Hu, Miao Zhou, Xue-Fang Xu, Mengmeng Zeng, Ran Yang, Ya-Ping Li, Hao-Zhen Xu, Jing-Ping Xia, Xiuwen |
Author_xml | – sequence: 1 givenname: Hao-Zhen surname: Li fullname: Li, Hao-Zhen organization: Key Laboratory of Advanced Micro-Structured Materials of Ministry of Education, School of Physics Science and Engineering, Tongji University , China – sequence: 2 givenname: Ran surname: Zeng fullname: Zeng, Ran organization: School of Communication Engineering, Hangzhou Dianzi University , China – sequence: 3 givenname: Miao surname: Hu fullname: Hu, Miao organization: School of Communication Engineering, Hangzhou Dianzi University , China – sequence: 4 givenname: Mengmeng surname: Xu fullname: Xu, Mengmeng organization: School of Communication Engineering, Hangzhou Dianzi University , China – sequence: 5 givenname: Xue-Fang surname: Zhou fullname: Zhou, Xue-Fang organization: School of Communication Engineering, Hangzhou Dianzi University , China – sequence: 6 givenname: Xiuwen surname: Xia fullname: Xia, Xiuwen organization: Institute of Atomic and Molecular Physics and Functional Materials, School of Mathematics and Physics, Jinggangshan University , China – sequence: 7 givenname: Jing-Ping surname: Xu fullname: Xu, Jing-Ping organization: Key Laboratory of Advanced Micro-Structured Materials of Ministry of Education, School of Physics Science and Engineering, Tongji University , China – sequence: 8 givenname: Ya-Ping surname: Yang fullname: Yang, Ya-Ping organization: Key Laboratory of Advanced Micro-Structured Materials of Ministry of Education, School of Physics Science and Engineering, Tongji University , China |
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