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基于EPR导引的连续变量安全量子克隆

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利用量子信道和经典信道相结合的方法,采用部分脱体传输设计了连续变量1→2量子克隆方案,在此基础上研究了克隆保真度与EPR导引之间的关系。研究结果表明:双向量子导引态是实现相干态安全量子克隆的必要资源。对于克隆输出模Clone 1,取最优增益时克隆保真度超过不可克隆阈值的实现需要共享纠缠源的双向导引,但并不是所有双向导引的资源都能使克隆的保真度大于2/3。在输出模Clone 1的最优增益下,观察了输出模Clone 1和输出模Clone 2的保真度随分束器反射率和压缩参数的变化,发现使用纠缠度较小但可导引的资源可以实现较高的克隆保真度,且克隆过程中也不需要较高的反射率。此研究结果对安全量子通信网络的构建具有一定的参考意义。
Secure Continuous Variable Quantum Cloning Based on EPR Steering
Objective Quantum communication is based on the three principles of uncertainty,measurement collapse,and no-cloning in quantum mechanics.Compared with traditional classical communication methods,quantum communication features security and high efficiency and has great application significance and prospect in information security.In recent years,domestic and international scientists have conducted a lot of research on theories and experiments and made outstanding achievements in long-distance transmission and practical network of quantum communication.Quantum teleportation and quantum cloning have caught extensive attention as important protocols in quantum communication.With the help of quantum entanglement and classical communication,the transmission of any unknown quantum state from one location to another can be realized.As important resources of quantum information,quantum entanglement and EPR steering are widely adopted in various quantum communication tasks.The natural asymmetry of EPR steering makes quantum steering a helpful resource in various quantum information processes.In the tasks of single-side device-independent quantum-key distribution,secure quantum teleportation,and subchannel discrimination,quantum steering can improve key acquisition rate,and enhance the protocol efficiency and security.In 2000,Cerf N J et al.proposed quantum cloning of Gaussian states with continuous variables and gave the fidelity boundary of quantum cloning as 2/3.In 2001,the Grangier P group presented the quantum and classical fidelity boundary of coherent state continuous variable quantum cloning under Heisenberg representation.For coherent state input,quantum teleportation is achieved when the fidelity exceeds the classical limit of 1/2,which is the best value that can be obtained without entanglement.However,it is necessary to have certain requirements for entangled beams to realize quantum teleportation with a fidelity greater than 2/3.In 2004,the Furusawa group applied three single-mode OPOs to obtain a continuous variable quantum teleportation network with an optimal fidelity of 0.64,and then they utilized four OPOs to achieve quantum teleportation with a fidelity of 0.7.In 2012,Pan J W group experimentally realized long-distance quantum teleportation.In 2018,Wei J H et al.put forward a quantum teleportation scheme using non-maximum entangled states for measurement.In 2018,Wang K et al.studied teleportation by partially entangled GHZ states.The analysis based on quantum cloning shows that for coherent state inputs,secure teleportation is guaranteed if the teleportation fidelity is greater than 2/3.To sum up,the research on remote transmission security is still a long-term important topic.Methods Based on the basic idea of quantum teleportation,we employ the method of combining quantum channel and classical channel to design a1→2 quantum cloning scheme with continuous variables by partially disembodied transport.The relationship between the fidelity of a partially disembodied transport cloning scheme and EPR entanglement source is studied theoretically.Firstly,the fidelity of two output modes in 1→2 cloning scheme,the entanglement and steering of EPR shared entanglement source are analyzed.Secondly,the relationship between the fidelity of the output mode Clone 1 and the steering characteristics under the optimal gain is studied.Thirdly,the fidelity of the output mode Clone 2 varies with the reflectance and squeezing parameters under the optimal gain of the output mode Clone 1.Results and Discussions First,we analyze the variation of the steering between entanglement sources b1 and b2 and optimal gain with η1 and η2.Only if η1>0.5 there is a steering of b2 by b1,and if η2>0.5 there is a steering of b1 by b2.The results are as follows:when η1>0.5 and η2>0.5,there is a two-way steering between b1 and b2,and the entanglement amount between the sources increases with the improving transmission efficiencyη1and η2.The range of optimal gain gopt=max{gb2|b1,gb1|b2} is√2≤gopt<5,and the optimal gain corresponds to the optimal gain of output mode Clone 1,which is not optimal for output mode Clone 2.Second,the fidelity of output modes Clone 1 and Clone 2 varies with η1 andη2 under different reflectance when the optimal gain gopt is taken.The fidelity F1>2/3 should be in the two-way steering region,but the fidelity of the two-way steering region may not always meet F1>2/3.Meanwhile,the fidelity of output mode Clone 1 decreases with the increasing reflectivity,and that of output mode Clone 2 reduces with the rising reflectance.Third,the fidelity of output modes Clone 1 and Clone 2 varies with η1 andη2under different squeezing parameters when the optimal gain gopt is taken.The fidelity of output mode Clone 1 in the two-way steering region is greater than 2/3,and the fidelity beyond the no-cloning threshold can also be achieved by two-way steering under smaller squeezing parameters.The fidelity of the output mode Clone 2 decreases with the increase in squeezing parameters.Conclusions In summary,we theoretically investigate the relationship between the fidelity of cloning and EPR steering based on the partially disembodied transport continuous variable 1→ 2 quantum cloning scheme.Meanwhile,we explore the fidelity variation with the reflectance of the beam-splitter and squeezing parameters at a given gain.The results show that for the output mode Clone 1,when the optimal gain is obtained,the two-way steering of the entanglement source should be shared when the fidelity exceeds the no-cloning threshold,but not all two-way steering resources can make the cloning fidelity greater than 2/3.The fidelity of output mode Clone 1 decreases with the rising reflectance and decreasing squeezing parameters,and the two-way steering can also achieve fidelity beyond the no-cloning threshold under smaller squeezing parameters.Additionally,the fidelity of the output mode Clone 2 reduces with the increasing reflectance and squeezing parameters.Therefore,high cloning fidelity does not require significant squeezing and high reflectivity.Therefore,we can employ the combination of quantum channel and classical channel to improve the cloning fidelity.The two-way quantum steering state is the necessary resource for secure quantum cloning of the coherent states.The research results provide certain references for the security of quantum communication networks.

quantum opticsquantum cloningquantum correlationtwo-way steering

王俊、翟淑琴

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山西大学物理电子工程学院,山西太原 030006

山西大学光电研究所量子光学与光量子器件国家重点实验室,山西太原 030006

量子光学 量子克隆 量子关联 双向导引

山西省自然科学基金国家自然科学基金国家重点研发计划山西省高等学校教学改革创新项目(2022)山西省"1331工程"建设项目

202203021211306120742332021YFC2201802J20220082

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(3)
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