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Semideterministic Entanglement between a Single Photon and an Atomic Ensemble

机译:单光子与原子团之间的半确定性纠缠

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Entanglement between a single photon and a matter qubit is an indispensable resource for quantum repeater and quantum networks. With atomic ensembles, the entanglement creation probability is typically very low to inhibit high-order events. In this paper, we propose and experimentally realize a scheme that creates atom-photon entanglement with an intrinsic efficiency of 50%. We make use of Rydberg blockade to generate two collective excitations, lying in separate internal states. By introducing the momentum degree of freedom for the excitations, and interfering them via Raman coupling, we entangle the two excitations. Via retrieving one excitation, we create the entanglement between the polarization of a single photon and the momentum of the remaining atomic excitation, with a measured fidelity of 0.901(8). The retrieved optical field is verified to be genuine single photons. The realized entanglement may be employed to create entanglement between two distant nodes in a fully heralded way and with a much higher efficiency.
机译:单光子和物质量子位之间的纠缠是量子中继器和量子网络必不可少的资源。对于原子团,纠缠创建概率通常非常低,无法抑制高阶事件。在本文中,我们提出并通过实验实现了一种以50%的固有效率创建原子-光子纠缠的方案。我们利用Rydberg封锁产生了两个处于独立内部状态的集体激发。通过引入激发的动量自由度,并通过拉曼耦合对其进行干扰,我们使两个激发纠缠在一起。通过检索一个激发,我们在单个光子的极化和剩余原子激发的动量之间产生了纠缠,测得的保真度为0.901(8)。取回的光场被验证为真正的单光子。可以采用已实现的纠缠以完全预示的方式并且以更高的效率在两个遥远节点之间创建纠缠。

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