Norman Bridge Laboratory of Physics 12-33, California Institute of Technology, Pasadena, California 91125, USA.
Phys Rev Lett. 2012 Jul 20;109(3):033603. doi: 10.1103/PhysRevLett.109.033603. Epub 2012 Jul 19.
We report the experimental realization of an optical trap that localizes single Cs atoms ≃215 nm from the surface of a dielectric nanofiber. By operating at magic wavelengths for pairs of counterpropagating red- and blue-detuned trapping beams, differential scalar light shifts are eliminated, and vector shifts are suppressed by ≈250. We thereby measure an absorption linewidth Γ/2π=5.7±0.1 MHz for the Cs 6S(1/2), F=4→6P(3/2), F'=5 transition, where Γ0/2π=5.2 MHz in free space. An optical depth d≃66 is observed, corresponding to an optical depth per atom d1≃0.08. These advances provide an important capability for the implementation of functional quantum optical networks and precision atomic spectroscopy near dielectric surfaces.
我们报告了一种光学陷阱的实验实现,该光学陷阱能够将单个 Cs 原子定位于介电纳米光纤表面 ≃215nm 的位置。通过在对于一对反向传播的红-蓝失谐捕获光束的魔法波长下操作,可以消除差分标量光位移,并通过 ≈250 抑制矢量位移。因此,我们测量了 Cs 6S(1/2), F=4→6P(3/2), F'=5 跃迁的吸收线宽 Γ/2π=5.7±0.1 MHz,其中在自由空间中 Γ0/2π=5.2 MHz。观察到光学深度 d≃66,对应于每个原子的光学深度 d1≃0.08。这些进展为在介电表面附近实现功能量子光学网络和精密原子光谱学提供了重要能力。