• Acta Physica Sinica
  • Vol. 69, Issue 6, 060301-1 (2020)
Wei Ye1, Ying Guo1、*, Ying Xia2, Hai Zhong1, Huan Zhang2, Jian-Zhi Ding1, and Li-Yun Hu2、*
Author Affiliations
  • 1School of Computer Science and Engineering, Central South University, Changsha 410083, China
  • 2Center for Quantum Science and Technology, Jiangxi Normal University, Nanchang 330022, China
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    DOI: 10.7498/aps.69.20191689 Cite this Article
    Wei Ye, Ying Guo, Ying Xia, Hai Zhong, Huan Zhang, Jian-Zhi Ding, Li-Yun Hu. Discrete modulation continuous-variable quantum key distribution based on quantum catalysis[J]. Acta Physica Sinica, 2020, 69(6): 060301-1 Copy Citation Text show less
    Schematic diagram of the entanglement-based (EB) model of the four-state modulation protocol using a zero-photon catalysis
    Fig. 1. Schematic diagram of the entanglement-based (EB) model of the four-state modulation protocol using a zero-photon catalysis
    Both and as a function of the modulation variance V.
    Fig. 2. Both and as a function of the modulation variance V.
    Success probability of implementing such a zero-photon catalysis as a function of the transmittance T for several different V. The dashed lines from bottom to top correspond to V = 1.2, 1.3, 1.4, 1.5, respectively.
    Fig. 3. Success probability of implementing such a zero-photon catalysis as a function of the transmittance T for several different V. The dashed lines from bottom to top correspond to V = 1.2, 1.3, 1.4, 1.5, respectively.
    Comparison of the performances between the original protocol and the ZPC-based four-state modulation protocol: (a) At a fixed , the secret key rate as a function of the transmission distance with different V = 1.2, 1.3, 1.4, when optimized over the transmittance T; (b) the transmittance T as a function of the transmission distance corresponding to panel (a).
    Fig. 4. Comparison of the performances between the original protocol and the ZPC-based four-state modulation protocol: (a) At a fixed , the secret key rate as a function of the transmission distance with different V = 1.2, 1.3, 1.4, when optimized over the transmittance T; (b) the transmittance T as a function of the transmission distance corresponding to panel (a).
    Comparison of the performances between the original protocol and the ZPC-based four-state modulation protocol: (a) At a fixed , the secret key rate as a function of the transmission distance with different , when optimized over the transmittance T; (b) the transmittance T as a function of the transmission distance corresponding to panel (a).
    Fig. 5. Comparison of the performances between the original protocol and the ZPC-based four-state modulation protocol: (a) At a fixed , the secret key rate as a function of the transmission distance with different , when optimized over the transmittance T; (b) the transmittance T as a function of the transmission distance corresponding to panel (a).
    Comparison of the performances between the original protocol and the ZPC-based four-state modulation protocol: (a) At a fixed , the secret key rate as a function of the transmission distance with different , when optimized over the transmittance T; (b) the transmittance T as a function of the transmission distance corresponding to panel (a).
    Fig. 6. Comparison of the performances between the original protocol and the ZPC-based four-state modulation protocol: (a) At a fixed , the secret key rate as a function of the transmission distance with different , when optimized over the transmittance T; (b) the transmittance T as a function of the transmission distance corresponding to panel (a).
    At a fixed , the tolerable excess noise between the original protocol and the ZPC-based four-state modulation protocol as a function of a transmission distance for several different , when optimized over T.
    Fig. 7. At a fixed , the tolerable excess noise between the original protocol and the ZPC-based four-state modulation protocol as a function of a transmission distance for several different , when optimized over T.
    Wei Ye, Ying Guo, Ying Xia, Hai Zhong, Huan Zhang, Jian-Zhi Ding, Li-Yun Hu. Discrete modulation continuous-variable quantum key distribution based on quantum catalysis[J]. Acta Physica Sinica, 2020, 69(6): 060301-1
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