School of Electrical and Information Engineering, Anhui University of Science and Technology, Huainan, Anhui 232001, China.
Key Laboratory for Micro-/Nano-Optoelectronic Devices of Ministry of Education, School of Physics and Electronics, Hunan University, Changsha 410082, China.
Phys Rev E. 2023 Jan;107(1-2):015204. doi: 10.1103/PhysRevE.107.015204.
Higher intensity of strong-coupling stimulated Brillouin scattering (SC-SBS) amplification is achieved by supplementary Raman amplification. In this scheme, a Raman pump laser first amplifies the seed pulse in the homogeneous plasma, and then a SC-SBS pump laser continues the amplification in the inhomogeneous plasma in order to suppress the spontaneous instability of pump lasers. The intensity of the seed laser gets higher and the duration of the seed laser gets shorter than that in the pure SC-SBS scheme with the same incident energy, while the energy conversion efficiency is not significantly reduced. We also found that the SC-SBS amplification is seeded by the leading pulse of Raman amplification. The results obtained from envelope coupling equations, Vlasov simulations, and two-dimensional particle-in-cell simulations agree with each other. This scheme offers a possible way to improve the SC-SBS amplification in experiments.
通过补充拉曼放大,实现了强耦合受激布里渊散射(SC-SBS)放大的更高强度。在该方案中,拉曼泵浦激光首先在均匀等离子体中放大种子脉冲,然后 SC-SBS 泵浦激光在非均匀等离子体中继续放大,以抑制泵浦激光的自发不稳定性。与相同入射能量的纯 SC-SBS 方案相比,种子激光的强度更高,种子激光的持续时间更短,而能量转换效率没有明显降低。我们还发现,SC-SBS 放大是由拉曼放大的前导脉冲触发的。从包络耦合方程、Vlasov 模拟和二维粒子模拟得到的结果相互一致。该方案为实验中提高 SC-SBS 放大提供了一种可能的途径。