论文标题
纳米结构碱金属蒸气细胞
Nano-structured alkali-metal vapor cells
论文作者
论文摘要
纳米级系统中的Atom-Light相互作用对基于集成发射器和光学模式的新技术具有巨大的希望。我们介绍具有纳米尺度内部结构的全玻璃碱金属蒸气单元的设计结构,构造方法和表征。我们的单元格具有无胶水设计,可以使用多功能光学访问,特别是具有高数值光圈光学元件,并以外部沉积ITO层的形式结合了紧凑的集成加热系统。通过在不同的照明和检测方案中进行光谱,我们研究了各种纳米镜景观中的原子密度和速度分布。我们将两光子激发方案应用于限制在细胞内一维的原子,达到谐振线的宽度大于比多普勒宽度小的数量级。我们还展示了限制在微米大小通道的两个维度的原子的子多普勒线宽度。此外,我们仅通过纳米尺度限制来说明对细胞内蒸气密度的控制,这可以为通向室温设备提供可扩展的途径,其中具有相互作用量的单个原子。我们的设计为微型设备提供了一个可靠的平台,可以轻松地与集成的光子电路结合使用。
Atom-light interactions in nano-scale systems hold great promise for novel technologies based on integrated emitters and optical modes. We present the design architecture, construction method, and characterization of an all-glass alkali-metal vapor cell with nanometer-scale internal structure. Our cell has a glue-free design which allows versatile optical access, in particular with high numerical aperture optics, and incorporates a compact integrated heating system in the form of an external deposited ITO layer. By performing spectroscopy in different illumination and detection schemes, we investigate atomic densities and velocity distributions in various nanoscopic landscapes. We apply a two-photon excitation scheme to atoms confined in one dimension within our cells, achieving resonance line-widths more than an order of magnitude smaller than the Doppler width. We also demonstrate sub-Doppler line-widths for atoms confined in two dimensions to micron-sized channels. Furthermore, we illustrate control over vapor density within our cells through nano-scale confinement alone, which could offer a scalable route towards room-temperature devices with single atoms within an interaction volume. Our design offers a robust platform for miniaturized devices that could easily be combined with integrated photonic circuits.