论文标题
基于纳米纤维的光学偶极子陷阱中碱性原子的状态不敏感的捕获
State-Insensitive Trapping of Alkaline-Earth Atoms in a Nanofiber-Based Optical Dipole Trap
论文作者
论文摘要
被困在纳米体的光纤逃生的光势中的中性原子是开发量子技术和探索基本科学的有前途的平台,例如量子网络和量子电动力学。基于捕获的碱原子的成功进步,在这里,我们使用纳米体面光纤的evanexcent田地展示了一个对碱原子(碱 - 地球原子)的状态不敏感的光学偶极子陷阱。利用$ \ sim \!\!\!1〜μ $ k的低激光冷却温度,可以通过延伸易于实现,我们演示了与$ \ sim \!\!\!\!3〜μ $ k相对应的记录的低陷阱深度。此外,我们采用了双重魔术波长陷阱方案,我们认识到国家对千厄尔兹宽的$ 5S^{2} \;^{1} \;^{1} \!原子过渡。这使我们能够通过实验发现并验证附近陷阱的状态不敏感性,理论上预测的魔术波长为435.827(25)nm。鉴于腹膜88的非磁基态和低碰撞散射长度,这项工作也为在纳米光子波导上开发多功能和坚固的物质波原子电路奠定了基础。
Neutral atoms trapped in the evanescent optical potentials of nanotapered optical fibers are a promising platform for developing quantum technologies and exploring fundamental science, such as quantum networks and quantum electrodynamics. Building on the successful advancements with trapped alkali atoms, here we demonstrate a state-insensitive optical dipole trap for strontium-88, an alkaline-earth atom, using the evanescent fields of a nanotapered optical fiber. Leveraging the low laser-cooling temperatures of $\sim\!\!1~μ$K readily achievable with strontium, we demonstrate trapping in record low trap depths corresponding to $\sim\!\!3~μ$K. Further, employing a double magic wavelength trapping scheme, we realize state-insensitive trapping on the kilohertz-wide $5s^{2}\;^{1}\!S_{0}-5s5p\;^{3}\!P_{1,|m|=1}$ cooling transition, which we verify by performing near-surface high-resolution spectroscopy of the atomic transition. This allows us to experimentally find and verify the state insensitivity of the trap nearby a theoretically predicted magic wavelength of 435.827(25) nm. Given the non-magnetic ground state and low collisional scattering length of strontium-88, this work also lays the foundation for developing versatile and robust matter-wave atomtronic circuits over nanophotonic waveguides.