论文标题
成像和定位单个原子与纳米量波导连接
Imaging and localizing individual atoms interfaced with a nanophotonic waveguide
论文作者
论文摘要
单颗粒分辨的荧光成像是冷原子物理学中的一种启示技术。但是,到目前为止,该技术尚未用于纳米光原子界面。在这里,我们成像使用光学纳米纤维被困和光学连接的单个原子。通过退化的拉曼冷却来抵消加热机构,将近谐音的光散落在原子上并成像。我们检测到150毫秒内的被困原子,并记录给定原子的图像序列。在我们的技术的基础上,我们进行了两个实验,这些实验以纳米纤维捕获的原子的数量和位置为条件。我们根据Beer-Lambert的定律来测量纳米纤维引导的共振光的传输,并以几个原子限制验证其指数缩放。此外,根据原子间距离,我们观察到两个同时被困在纳米纤维中的田地的干扰。所展示的技术可实现选择后和可能的反馈方案,从而开辟了通往量子纳米光子学实验的新一代实验的道路。
Single particle-resolved fluorescence imaging is an enabling technology in cold-atom physics. However, so far, this technique was not available for nanophotonic atom-light interfaces. Here, we image single atoms that are trapped and optically interfaced using an optical nanofiber. Near-resonant light is scattered off the atoms and imaged while counteracting heating mechanisms via degenerate Raman cooling. We detect trapped atoms within 150 ms and record image sequences of given atoms. Building on our technique, we perform two experiments which are conditioned on the number and position of the nanofiber-trapped atoms. We measure the transmission of nanofiber-guided resonant light and verify its exponential scaling in the few-atom limit, in accordance with Beer-Lambert's law. Moreover, depending on the interatomic distance, we observe interference of the fields that two simultaneously trapped atoms emit into the nanofiber. The demonstrated technique enables post-selection and possible feedback schemes and thereby opens the road towards a new generation of experiments in quantum nanophotonics.