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Quantum coherent control of Gaussian multipartite entanglement

机译:高斯多粒子纠缠的量子相干控制

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摘要

Quantum information has reached a stage where real-world applications stimulate an intense research for the implementation of reliable and practical protocols for quantum communication and information processing. The implementation of such protocols, though, requires distributing quantum correlations (entanglement) among a number of degrees of freedom (modes) increasing with the complexity of the task to achieve. In the large-number-of-modes regime, the most promising example is probably one-way quantum computation in which the computation is achieved by applying local measurements to a set of modes initially in a cluster state [1]. However the generation of multipartite entangled states requires experimental configurations whose complexity increases with the number of the modes involved by means of optical devices. In contrast, a practical source should be compact, scalable, and permit to master the quantum properties of the generated states even when the number of modes is very large.
机译:Quantum信息已达到一个现实世界应用刺激对量子通信和信息处理的可靠和实用协议的激烈研究的阶段。但是,这种协议的实施需要在许多自由度(模式)中随着任务的复杂性而增加的自由度(模式)之间的速度相关性(纠缠)。在大量模式中,最有希望的示例可能是单向量子计算,其中通过将本地测量应用于群集状态的一组模式来实现计算,以便在群集状态[1]中来实现。然而,多分纠缠状态的产生需要实验配置,其复杂性随着光学装置所涉及的模式的数量而增加。相比之下,即使当模式数量非常大时,实用的源也应该是紧凑的,可伸缩的,并且允许掌握所生成状态的量子特性。

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