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利用无相位失配方案从热原子蒸汽中产生亚兆赫兹且光谱明亮的双光子。

Generation of sub-MHz and spectrally-bright biphotons from hot atomic vapors with a phase mismatch-free scheme.

作者信息

Hsu Chia-Yu, Wang Yu-Sheng, Chen Jia-Mou, Huang Fu-Chen, Ke Yi-Ting, Huang Emily Kay, Hung Weilun, Chao Kai-Lin, Hsiao Shih-Si, Chen Yi-Hsin, Chuu Chih-Sung, Chen Ying-Cheng, Chen Yong-Fan, Yu Ite A

出版信息

Opt Express. 2021 Feb 1;29(3):4632-4644. doi: 10.1364/OE.415473.

Abstract

We utilized the all-copropagating scheme, which maintains the phase-match condition, in the spontaneous four-wave mixing (SFWM) process to generate biphotons from a hot atomic vapor. The linewidth and spectral brightness of our biphotons surpass those of the biphotons produced with the hot-atom SFWM in the previous works. Moreover, the generation rate of the sub-MHz biphoton source in this work can also compete with those of the sub-MHz biphoton sources of the cold-atom SFWM or cavity-assisted spontaneous parametric down conversion. Here, the biphoton linewidth is tunable for an order of magnitude. As we tuned the linewidth to 610 kHz, the generation rate per linewidth is 1,500 pairs/(s·MHz) and the maximum two-photon correlation function, ,(2), of the biphotons is 42. This ,(2) violates the Cauchy-Schwarz inequality for classical light by 440 folds, and demonstrates that the biphotons have a high purity. By increasing the pump power by 16 folds, we further enhanced the generation rate per linewidth to 2.3×10 pairs/(s·MHz), while the maximum ,(2) became 6.7. In addition, we are able to tune the linewidth down to 290±20 kHz. This is the narrowest linewidth to date among all single-mode biphoton sources of room-temperature and hot media.

摘要

我们在自发四波混频(SFWM)过程中采用了全共传播方案,该方案可维持相位匹配条件,以从热原子蒸汽中产生双光子。我们所产生双光子的线宽和光谱亮度超过了此前工作中热原子SFWM所产生双光子的线宽和光谱亮度。此外,本工作中亚兆赫兹双光子源的产生率也能与冷原子SFWM或腔辅助自发参量下转换的亚兆赫兹双光子源的产生率相媲美。在此,双光子线宽在一个数量级范围内是可调的。当我们将线宽调至610 kHz时,每线宽的产生率为1500对/(秒·兆赫兹),双光子的最大双光子关联函数g(2)为42。这个g(2)比经典光的柯西 - 施瓦茨不等式违反了440倍,表明双光子具有高纯度。通过将泵浦功率提高16倍,我们进一步将每线宽的产生率提高到2.3×10对/(秒·兆赫兹),而最大g(2)变为6.7。此外,我们能够将线宽调至290±20 kHz。这是迄今为止所有室温及热介质单模双光子源中最窄的线宽。

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