Leszczyński Adam, Parniak Michał, Wasilewski Wojciech
Opt Express. 2017 Jan 9;25(1):284-295. doi: 10.1364/OE.25.000284.
Multiphoton processes in dense atomic vapors such as four-wave mixing or coherent blue light generation are typically viewed from single-atom perspective. Here we study the surprisingly important effect of phase matching near two-photon resonances that arises due to spatial extent of the atomic medium within which the multiphoton process occurs. The non-unit refractive index of the atomic vapor may inhibit generation of light in nonlinear processes, significantly shift the efficiency maxima in frequencies and redirect emitted beam. We present these effects on an example of four-wave mixing in dense rubidium vapors in a double-ladder configuration. By deriving a simple theory that takes into account essential spatial properties of the process, we give precise predictions and confirm their validity in the experiment. The model allows us to improve on the geometry of the experiment and engineer more efficient four-wave mixing.
诸如四波混频或相干蓝光产生等在密集原子蒸汽中的多光子过程,通常是从单原子角度来观察的。在此,我们研究了由于多光子过程发生所在的原子介质的空间范围而在双光子共振附近出现的相位匹配这一惊人的重要效应。原子蒸汽的非单位折射率可能会抑制非线性过程中光的产生,显著地在频率上移动效率最大值,并使发射光束发生转向。我们以双梯形结构的密集铷蒸汽中的四波混频为例来展示这些效应。通过推导一个考虑了该过程基本空间特性的简单理论,我们给出了精确的预测,并在实验中证实了它们的有效性。该模型使我们能够改进实验的几何结构,并设计出更高效的四波混频。