论文标题

几乎无法区分的单光子通过带有空腔调制和相补偿的级联的双光子来区分

Almost indistinguishable single photons via multiplexing cascaded biphotons with cavity modulation and phase compensation

论文作者

Wong, Y. -E., Chang, T. H., Jen, H. H.

论文摘要

由碱金属原子集合产生的级联反向的级联二流子是一种极好的纠缠资源,可实现长距离量子通信。可以通过利用基于纤维的量子网络中级联光子的上部过渡中的低损失电信带宽来实现遥远位置之间的量子信息的通信。同时,可以在四波混合过程下创建该高方向和频率相关的双音的较低过渡的红外光子,并且可以在本地存储为集体自旋波。在这里,我们从理论上研究了该双爆的频率纠缠,并提出了两种消除其相互关联在频率空间中的方法。第一种方法采用光腔,该光腔通过将多重原子集合用相位补偿多样化,将双光谱调节为更对称和狭窄的光谱函数。单光子的纯度可达到$ 0.999 $,并且Biphoton的纠缠熵$ s $减少到$ 0.006 $,比没有多重速度的$ 200 $ $ 200 $倍。另一种方法在两个原子集合中采用了对称激光场的对称泵,当两个光子使用非歧视检测设备时,这会导致$ s \ sim 0.3 $中等降低。极低的频率纠缠意味着几乎无法区分的单个光子源,这为光子量子模拟和计算提供了潜在的资源。

The cascade-emitted biphotons generated from the alkali metal atomic ensembles are an excellent entanglement resource which enables long-distance quantum communication. The communication of quantum information between distant locations can be realized by utilizing the low-loss telecom bandwidth in the upper transition of the cascaded photons in a fiber-based quantum network. Meanwhile, the infrared photon from the lower transition of this highly directional and frequency-correlated biphoton can be created under the four-wave mixing process and can be stored locally as a collective spin wave. Here we theoretically investigate the frequency entanglement of this biphoton and propose two approaches to remove their mutual correlations in frequency spaces. The first approach applies an optical cavity which modulates the biphoton spectrum into a more symmetric and narrow spectral function by multiplexing multiple atomic ensembles with phase compensation. The purity of single photon reaches up to $0.999$ and the entanglement entropy $S$ of the biphoton reduces to $0.006$, which is $200$ times smaller than the one without multiplexing. The other approach employs a symmetric pumping of the laser fields in two atomic ensembles, which leads to a moderate reduction of $S\sim 0.3$ when non-discrimination detection devices are used for both photons. An extremely low frequency entanglement implies an almost indistinguishable single photon source, which offers a potential resource for photonic quantum simulation and computation.

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