量子纠缠
量子网络
计算机科学
多方
光子
传输(电信)
协议(科学)
量子密钥分配
钥匙(锁)
量子密码学
拓扑(电路)
多体纠缠
计算机网络
密钥生成
量子技术
量子
量子信道
安全传输
同步(交流)
量子信息科学
自发参量下转换
量子信息
参数统计
秘密分享
量子力学
理论计算机科学
物理
量子隐形传态
构造(python库)
分布式计算
量子容量
量子计算机
模块化设计
节点(物理)
量子传感器
光子纠缠
作者
Qi Zhang,Jia‐Wei Ying,Shi-Pu Gu,Xing-Fu Wang,Ming‐Ming Du,Wei Zhong,Lan Zhou,Yubo Sheng
摘要
Quantum secret sharing (QSS) plays a critical role in building the distributed quantum networks. Device-independent (DI) QSS provides the highest security level for QSS. However, the photon transmission loss and extremely low multipartite entanglement generation rate largely limit DI QSS's secure photon transmission distance (less than 1 km) and practical key generation efficiency. To address the above-mentioned drawbacks, we propose the quantum memory-assisted (QMA) DI QSS protocol based on single-photon sources (SPSs). The single photons from the SPSs are used to construct long-distance multipartite entanglement channels with the help of the heralded architecture. The heralded architecture enables our protocol to have an infinite secure photon transmission distance in theory. The QMA technology can not only increase the multi-photon synchronization efficiency but also optimize the photon transmittance to maximize the construction efficiency of the multipartite entanglement channels. Our protocol achieves the practical key generation efficiency seven orders of magnitude higher than that of the existing DI QSS protocols based on cascaded spontaneous parametric downconversion sources and six orders of magnitude higher than that of the DI QSS based on SPSs without QMA. Our protocol has modular characteristics and is feasible under the current experimental technical conditions. Combining with the advanced random key generation basis strategy, the requirement on experimental devices can be effectively reduced. Our protocol is expected to promote the development of long-distance and high-efficiency DI quantum network in the future.
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