论文标题
分散对单光子波包之间不可区分性的影响
Effect of dispersion on indistinguishability between single-photon wave-packets
论文作者
论文摘要
通过通过分散培养基传播,激光脉冲的时间光谱曲线应不可避免地修饰。尽管这种分散效应在经典光学中进行了很好的研究,但其对单光子波包的影响,即单光子的物质波,尚未完全揭示。在本文中,我们研究了分散剂对单光子波包的不可区分性通过Hong-Ou-Mandel(HOM)干扰的影响。 By dispersively manipulating two indistinguishable single-photon wave-packets before interfering with each other, we observe that the difference of the second-order dispersion between two optical paths of the HOM interferometer can be mapped to the interference curve, indicating that (1) with the same amount of dispersion effect in both paths, the HOM interference curve must be only determined by the intrinsic indistinguishability between the wave-packets,即,由于Feynman路径之间的不可区分性而导致的分散取消; (2)无法取消两条路径中的不平衡分散效应,并将扩大干扰曲线,从而提供了一种测量二阶分散系数的方法。我们的结果表明,对单光子波包的更全面理解,并铺平了探索HOM干扰应用的方法。
With propagating through a dispersive medium, the temporal-spectral profile of laser pulses should be inevitably modified. Although such dispersion effect has been well studied in classical optics, its effect on a single-photon wave-packet, i.e., the matter wave of a single-photon, has not yet been entirely revealed. In this paper, we investigate the effect of dispersion on indistinguishability of single-photon wave-packets through the Hong-Ou-Mandel (HOM) interference. By dispersively manipulating two indistinguishable single-photon wave-packets before interfering with each other, we observe that the difference of the second-order dispersion between two optical paths of the HOM interferometer can be mapped to the interference curve, indicating that (1) with the same amount of dispersion effect in both paths, the HOM interference curve must be only determined by the intrinsic indistinguishability between the wave-packets, i.e., dispersion cancellation due to the indistinguishability between Feynman paths; (2) unbalanced dispersion effect in two paths cannot be cancelled and will broaden the interference curve thus providing a way to measure the second-order dispersion coefficient. Our results suggest a more comprehensive understanding of the single-photon wave-packet and pave ways to explore further applications of the HOM interference.