论文标题

使用单光子协议纠缠远程Qubit:深入的理论和实验研究

Entangling remote qubits using the single-photon protocol: an in-depth theoretical and experimental study

论文作者

Hermans, S. L. N., Pompili, M., Martins, L. Dos Santos, Montblanch, A. R. -P., Beukers, H. K. C., Baier, S., Borregaard, J., Hanson, R.

论文摘要

远程物质Qubits之间的纠缠产生已发展为基本研究以及新兴量子技术的关键能力。在单光子中,协议纠缠是通过产生的Qubit-Photon纠缠状态和随后检测到光束分离器后面的单个光子的。在这项工作中,我们对该方案及其各种不忠的来源进行了详细的理论和实验研究。我们开发了一个广泛的理论模型,然后根据钻石的氮呈现中心将其定制为我们的实验环境。在实验上,我们通过生成远程状态以在不同的相位和初始Qubit叠加状态的幅度以及到达光束分离器的光子的光相差的不同相位来验证模型。我们表明,量子位的光学跃迁之间的静态频率偏移导致纠缠状态相,该阶段取决于光子检测时间。我们发现,对氮呈现中心的电荷共振检查实施会产生变换有限的线宽。此外,我们测量了双光激发的概率,这是不忠的重要来源,它是激发脉冲功率的函数。最后,我们发现不完美的光激发可以导致依赖于检测臂的状态保真度和速率。此处介绍的结论不是针对用于执行实验的氮 - 视口中心的特定特定的,因此很容易适用于其他量子平台。

The generation of entanglement between remote matter qubits has developed into a key capability for fundamental investigations as well as for emerging quantum technologies. In the single-photon, protocol entanglement is heralded by generation of qubit-photon entangled states and subsequent detection of a single photon behind a beam splitter. In this work we perform a detailed theoretical and experimental investigation of this protocol and its various sources of infidelity. We develop an extensive theoretical model and subsequently tailor it to our experimental setting, based on nitrogen-vacancy centers in diamond. Experimentally, we verify the model by generating remote states for varying phase and amplitudes of the initial qubit superposition states and varying optical phase difference of the photons arriving at the beam splitter. We show that a static frequency offset between the optical transitions of the qubits leads to an entangled state phase that depends on the photon detection time. We find that the implementation of a Charge-Resonance check on the nitrogen-vacancy center yields transform-limited linewidths. Moreover, we measure the probability of double optical excitation, a significant source of infidelity, as a function of the power of the excitation pulse. Finally, we find that imperfect optical excitation can lead to a detection-arm-dependent entangled state fidelity and rate. The conclusion presented here are not specific to the nitrogen-vacancy centers used to carry out the experiments, and are therefore readily applicable to other qubit platforms.

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