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Measurement-device-independent quantum secret sharing with hyper-encoding 被引量:4
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作者 Xing-Xing Ju Wei Zhong +1 位作者 Yu-Bo Sheng Lan Zhou 《Chinese Physics B》 SCIE EI CAS CSCD 2022年第10期307-313,共7页
Quantum secret sharing(QSS) is a typical multi-party quantum communication mode, in which the key sender splits a key into several parts and the participants can obtain the key by cooperation. Measurement-device-indep... Quantum secret sharing(QSS) is a typical multi-party quantum communication mode, in which the key sender splits a key into several parts and the participants can obtain the key by cooperation. Measurement-device-independent quantum secret sharing(MDI-QSS) is immune to all possible attacks from measurement devices and can greatly enhance QSS's security in practical applications. However, previous MDI-QSS's key generation rate is relatively low. Here, we adopt the polarization-spatial-mode hyper-encoding technology in the MDI-QSS, which can increase single photon's channel capacity. Meanwhile, we use the cross-Kerr nonlinearity to realize the complete hyper-entangled Greenberger-Horne-Zeilinger state analysis. Both above factors can increase MDI-QSS's key generation rate by about 10^(3). The proposed hyper-encoded MDI-QSS protocol may be useful for future multiparity quantum communication applications. 展开更多
关键词 measurement-device-independent quantum secret sharing hyper-encoding technology cross-Kerr nonlinearity hyper-entangled Greenberger-Horne-Zeilinger state analysis
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High-capacity device-independent quantum secure direct communication based on hyper-encoding 被引量:3
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作者 Hui Zeng Ming-Ming Du +2 位作者 Wei Zhong Lan Zhou Yu-Bo Sheng 《Fundamental Research》 CAS CSCD 2024年第4期851-857,共7页
Quantum secure direct communication(QSDC)can directly transmit secret messages through quantum channel without keys.Device-independent(DI)QSDC guarantees the message security relying only on the observation of the Bel... Quantum secure direct communication(QSDC)can directly transmit secret messages through quantum channel without keys.Device-independent(DI)QSDC guarantees the message security relying only on the observation of the Bell-inequality violation,but not on any detailed description or trust of the devices'inner workings.Compared with conventional QSDC,DI-QSDC has relatively low secret message capacity.To increase DI-QSDC's secret messages capacity,we propose a high-capacity DI-QSDC protocol based on the hyper-encoding technique.The total message leakage rate of our DI-QSDC protocol only relies on the most robust degree of freedom.We provide the numerical simulation of its secret message capacity altered with the communication distance.Our work serves as an important step toward thefurther development of DI-QSDC systems. 展开更多
关键词 Quantum cryptography Device-independent Quantum secure direct communication hyper-encoding Hyperentangled Bell state measurement Secret message capacity
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Complete hyperentangled Greenberger–Horne–Zeilinger state analysis for polarization and time-bin hyperentanglement
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作者 曾志 《Chinese Physics B》 SCIE EI CAS CSCD 2023年第6期122-126,共5页
We present an efficient scheme for the complete analysis of hyperentangled Greenberger–Horne–Zeilinger(GHZ)state in polarization and time-bin degrees of freedom with two steps. Firstly, the polarization GHZ state is... We present an efficient scheme for the complete analysis of hyperentangled Greenberger–Horne–Zeilinger(GHZ)state in polarization and time-bin degrees of freedom with two steps. Firstly, the polarization GHZ state is distinguished completely and nondestructively, resorting to the controlled phase flip(CPF) gate constructed by the cavity-assisted interaction. Subsequently, the time-bin GHZ state is analyzed by using the preserved polarization entanglement. With the help of CPF gate and self-assisted mechanism, our scheme can be directly generalized to the complete N-photon hyperentangled GHZ state analysis, and it may have potential applications in the hyperentanglement-based quantum communication. 展开更多
关键词 hyperentangled state analysis polarization-time-bin hyperentanglement controlled phase flip(CPF)gate
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