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Efficient generation of twin photons at telecom wavelengths with 2.5 GHz repetition-rate-tunable comb laser

机译:2.5 GHz重复频率可调梳状激光器可有效产生电信波长的双光子

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摘要

Efficient generation and detection of indistinguishable twin photons are at the core of quantum information and communications technology (Q-ICT). These photons are conventionally generated by spontaneous parametric down conversion (SPDC), which is a probabilistic process, and hence occurs at a limited rate, which restricts wider applications of Q-ICT. To increase the rate, one had to excite SPDC by higher pump power, while it inevitably produced more unwanted multi-photon components, harmfully degrading quantum interference visibility. Here we solve this problem by using recently developed 10 GHz repetition-rate-tunable comb laser, combined with a group-velocity-matched nonlinear crystal, and superconducting nanowire single photon detectors. They operate at telecom wavelengths more efficiently with less noises than conventional schemes, those typically operate at visible and near infrared wavelengths generated by a 76 MHz Ti Sapphire laser and detected by Si detectors. We could show high interference visibilities, which are free from the pump-power induced degradation. Our laser, nonlinear crystal, and detectors constitute a powerful tool box, which will pave a way to implementing quantum photonics circuits with variety of good and low-cost telecom components, and will eventually realize scalable Q-ICT in optical infra-structures.
机译:难以区分的双光子的有效生成和检测是量子信息和通信技术(Q-ICT)的核心。这些光子通常是通过自发的参数下变频(SPDC)生成的,这是一个概率过程,因此以有限的速率发生,从而限制了Q-ICT的广泛应用。为了提高速率,人们不得不通过更高的泵浦功率来激发SPDC,同时不可避免地会产生更多不需要的多光子分量,从而有害地降低了量子干扰的可见度。在这里,我们通过使用最近开发的10 GHz重复频率可调梳状激光器,与组速度匹配的非线性晶体以及超导纳米线单光子探测器相结合来解决此问题。与传统方案相比,它们在电信波长下更有效地工作,且噪声更少,那些通常在由76 MHz钛蓝宝石激光器产生并由Si检测器检测到的可见和近红外波长下工作。我们可以显示出很高的干扰可见性,而不受泵功率引起的退化的影响。我们的激光,非线性晶体和检测器构成了一个强大的工具箱,将为使用各种优质和低成本电信组件实施量子光子学电路铺平道路,并最终在光学基础设施中实现可扩展的Q-ICT。

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