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Experimental Demonstration of Five-photon Entanglement and Open-destination Teleportation

机译:五光子纠缠和开放目标隐形传态的实验演示

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摘要

Universal quantum error-correction requires the ability of manipulating entanglement of five or more particles. Although entanglement of three or four particles has been experimentally demonstrated and used to obtain the extreme contradiction between quantum mechanics and local realism, the realization of five-particle entanglement remains an experimental challenge. Meanwhile, a crucial experimental challenge in multi-party quantum communication and computation is the so-called open-destination teleportation. During open-destination teleportation, an unknown quantum state of a single particle is first teleported onto a N-particle coherent superposition to perform distributed quantum information processing. At a later stage this teleported state can be readout at any of the N particles for further applications by performing a projection measurement on the remaining N-1 particles. Here, we report a proof-of-principle demonstration of five-photon entanglement and open-destination teleportation. In the experiment, we use two entangled photon pairs to generate a four-photon entangled state, which is then combined with a single photon state to achieve the experimental goals. The methods developed in our experiment would have various applications e.g. in quantum secret sharing and measurement-based quantum computation.
机译:通用量子误差校正需要能够处理五个或更多粒子的纠缠。尽管已通过实验证明了三或四个粒子的纠缠并用于获得量子力学与局部实在主义之间的极端矛盾,但实现五粒子纠缠仍然是一项实验挑战。同时,在多方量子通信和计算中,一项至关重要的实验挑战是所谓的开放目的地隐形传送。在开放目标的隐形传送中,单个粒子的未知量子态首先被传送到N粒子相干叠加上,以执行分布式量子信息处理。在以后的阶段,可以通过对剩余的N-1个粒子执行投影测量,在N个粒子中的任何一个上读出此传送状态,以进行进一步的应用。在这里,我们报告五光子纠缠和开放目标隐形传态的原理证明。在实验中,我们使用两个纠缠光子对来生成四光子纠缠态,然后将其与单个光子态组合以达到实验目的。我们实验中开发的方法将具有多种应用,例如量子秘密共享和基于测量的量子计算。

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