Lai Meimei, Franson James D, Pittman Todd B
Physics Department, University of Maryland Baltimore County, Baltimore, Maryland 21250, USA.
Appl Opt. 2013 Apr 20;52(12):2595-601. doi: 10.1364/AO.52.002595.
The use of subwavelength diameter tapered optical fibers (TOFs) in warm rubidium vapor has recently been identified as a promising system for realizing ultralow-power nonlinear optical effects. However, at the relatively high atomic densities needed for many of these experiments, rubidium atoms accumulating on the TOF surface can cause a significant loss of overall transmission through the fiber. Here we report direct measurements of the time scale associated with this transmission degradation for various rubidium density conditions. Transmission is affected almost immediately after the introduction of rubidium vapor into the system, and declines rapidly as the density is increased. More significantly, we show how a heating element designed to raise the TOF temperature can be used to reduce this transmission loss and dramatically extend the effective TOF transmission lifetime.
最近,人们发现,在温热的铷蒸汽中使用亚波长直径的锥形光纤(TOF)是实现超低功率非线性光学效应的一个很有前景的系统。然而,在许多此类实验所需的相对较高的原子密度下,积累在TOF表面的铷原子会导致通过光纤的整体传输显著损失。在此,我们报告了在各种铷密度条件下,与这种传输退化相关的时间尺度的直接测量结果。在将铷蒸汽引入系统后,传输几乎立即受到影响,并随着密度的增加而迅速下降。更重要的是,我们展示了如何使用一个旨在提高TOF温度的加热元件来减少这种传输损失,并显著延长TOF的有效传输寿命。