CEA, DAM, DIF, F-91297 Arpajon, France and Université Paris-Saclay, CEA, Laboratoire Matière en Conditions Extrêmes, 91680 Bruyères-le-Châtel, France.
Phys Rev E. 2023 Mar;107(3-2):035208. doi: 10.1103/PhysRevE.107.035208.
We derive the analytical dispersion relation of a high-energy laser beam's backward stimulated Brillouin scattering (BSBS) in a hot plasma, that accounts both for the random phase plate (RPP) induced spatial shaping and its associated phase randomness. Indeed, phase plates are mandatory in large laser facilities where a precise control of the focal spot size is required. While the focal spot size is well controlled, such techniques produce small scale intensity variations that can trigger laser-plasma instabilities such as BSBS. Quantifying the resulting instability variability is shown to be crucial for understanding accurately the backscattering temporal and spatial growth as well as the asymptotic reflectivity. Our model, validated by means of a large number of three-dimensional paraxial simulations and experimental data, offers three quantitative predictions. The first one addresses the temporal exponential growth of the reflectivity by deriving and solving the BSBS RPP dispersion relation. A large statistical variability of the temporal growth rate is shown to be directly related to the phase plate randomness. Then, we predict the portion of the beam's section that is absolutely unstable, thus helping to precisely assess the validity of the vastly used convective analysis. Finally, a simple analytical correction to the plane wave spatial gain is extracted from our theory giving a practical and effective asymptotic reflectivity prediction that includes the impact of phase plates smoothing techniques. Hence, our study sheds light on the long-time studied BSBS, deleterious to many high-energy experimental studies related to the physics of inertial confinement fusion.
我们推导出了高能激光束在后向受激布里渊散射(BSBS)中的解析色散关系,该关系同时考虑了随机相位板(RPP)引起的空间成形及其相关的相位随机性。事实上,在需要精确控制焦点尺寸的大型激光设施中,相位板是必不可少的。虽然焦点尺寸得到了很好的控制,但这些技术会产生小尺度的强度变化,从而引发 BSBS 等激光等离子体不稳定性。定量评估由此产生的不稳定性变化对于准确理解后向散射的时间和空间增长以及渐近反射率至关重要。我们的模型通过大量的三维傍轴模拟和实验数据进行了验证,提供了三个定量预测。第一个预测是通过推导和求解 BSBS RPP 色散关系来描述反射率的时间指数增长。结果表明,反射率的时间增长率具有很大的统计可变性,这与相位板的随机性直接相关。然后,我们预测了光束截面中完全不稳定的部分,从而有助于精确评估广泛使用的对流分析的有效性。最后,从我们的理论中提取出对平面波空间增益的简单分析修正,给出了一种实用有效的渐近反射率预测,其中包括了相位板平滑技术的影响。因此,我们的研究揭示了长期以来研究的 BSBS 的本质,它对许多与惯性约束聚变物理相关的高能实验研究都是有害的。