Hokr Brett H, Bixler Joel N, Yakovlev Vladislav V
Texas A&M University, College Station, TX 77843.
Appl Phys A Mater Sci Process. 2014 Nov 1;117(2):681-685. doi: 10.1007/s00339-014-8722-7.
Random Raman lasers offer a unique opportunity to study many exciting dynamics of light propagation in turbid media. One of the most notable features observed to exist in the recently discovered random Raman laser are the presence of higher order stimulated Raman scattering (SRS) processes. The higher order Stokes generation likely comes from photons that have the longest pathlengths, thus have the most gain. This makes these photons particularly likely to offer interesting insight into wave propagation effects such as coherent backscattering and optical Anderson localization. In this work, we use Monte Carlo simulations to investigate how these higher order processes occur and what properties they are expected to exhibit when considering only transport equation dynamics. This knowledge will allow us to look for deviations from this theory in future experiments to determine if wavelike properties play an active role in random Raman lasing.
随机拉曼激光器为研究光在浑浊介质中传播的许多令人兴奋的动力学特性提供了独特的机会。在最近发现的随机拉曼激光器中观察到的最显著特征之一是存在高阶受激拉曼散射(SRS)过程。高阶斯托克斯光的产生可能来自路径长度最长、增益最大的光子。这使得这些光子特别有可能为诸如相干背散射和光学安德森局域化等波传播效应提供有趣的见解。在这项工作中,我们使用蒙特卡罗模拟来研究这些高阶过程是如何发生的,以及在仅考虑输运方程动力学时它们预期会表现出哪些特性。这些知识将使我们能够在未来的实验中寻找与该理论的偏差,以确定波动特性是否在随机拉曼激光中发挥积极作用。