论文标题

三光子不对称最大纠缠状态及其在量子传送中的应用的实验实现

Experimental realization of a three-photon asymmetric maximally entangled state and its application to quantum teleportation

论文作者

Zhou, Linxiang, Xu, Qiao, Feng, Tianfeng, Zhou, Xiaoqi

论文摘要

量子纠缠是量子信息处理的基本资源,广泛用于量子通信,量子计算和量子计量学。量子纠缠的早期研究主要集中在量子状态上,但是近年来,越来越多的研究开始着重于高维纠缠状态。与量子纠缠的状态相比,高维纠缠状态具有更大的信息能力,并且有可能实现更复杂的量子应用。在这封信中,我们通过实验制备了一种特殊的高维纠缠状态,即所谓的三光子不对称最大纠缠状态,该状态由两个二维光子和一个四维光子组成。使用这种不对称的最大纠缠状态作为资源,我们还实施了原理量子遗传实验,从而实现了将量子信息从两个量子位转移到一个木马的传递。量子传送的保真度范围为0.79至0.86,远高于最佳的单拷贝木夸特州估计限制2/5的最佳状态抑制极限,最大Qutrit-Quart-Quart重叠为3/4,因此确认了真正的和非分类的四维传送。在这里实现的不对称纠缠状态有可能在未来的量子网络中用作量子接口,从而可以通过本工作中证明的量子传送协议在不同维度的量子对象之间传递量子信息。

Quantum entanglement is a fundamental resource for quantum information processing and is widely used in quantum communication, quantum computation and quantum metrology. Early research on quantum entanglement mainly focus on qubit states, but in recent years, more and more research has begun to focus on high-dimensional entangled states. Compared with qubit entangled states, higher-dimensional entangled states have a larger information capacity and the potential to realize more complex quantum applications. In this Letter, we have experimentally prepared a special high-dimensional entangled state, the so-called three-photon asymmetric maximally entangled state, which consists of two two-dimensional photons and one four-dimensional photon. Using this asymmetric maximally entangled state as a resource, we have also implemented a proof-of-principle quantum teleportation experiment, realizing the transfer of quantum information from two qubits to a single ququart. The fidelities of the quantum teleportation range from 0.79 to 0.86, which are well above both the optimal single-copy ququart state-estimation limit of 2/5 and maximal qutrit-ququart overlap of 3/4, thus confirming a genuine and nonclassical four-dimensional teleportation. The asymmetric entangled state realized here has the potential to be used as a quantum interface in future quantum networks, allowing quantum information transfer between quantum objects of different dimensions via the quantum teleportation protocol demonstrated in this work.

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