Gyrdymov Mikhail, Cikhardt Jakub, Tavana Parysatis, Borisenko Nataliya G, Gus Kov Sergey Yu, Yakhin Rafael A, Vegunova Galina A, Wei Wenqing, Ren Jieru, Zhao Yongtao, Hoffmann Dieter H H, Deng Zhigang, Zhou Weimin, Cheng Rui, Yang Jie, Novotny Jan, Shen Xiaofei, Pukhov Alexander, Jacoby Joachim, Spielmann Christian, Popov Viacheslav S, Veysman Mikhail E, Andreev Nikolay E, Rosmej Olga N
Institute for Applied Physics (IAP), Goethe University Frankfurt, Frankfurt am Main, Germany.
Faculty of Electrical Engineering, Czech Technical University in Prague, Prague, Czechia.
Sci Rep. 2024 Jun 26;14(1):14785. doi: 10.1038/s41598-024-65490-7.
Direct laser acceleration (DLA) of electrons in plasmas of near-critical density (NCD) is a very advancing platform for high-energy PW-class lasers of moderate relativistic intensity supporting Inertial Confinement Fusion research. Experiments conducted at the PHELIX sub-PW Nd:glass laser demonstrated application-promising characteristics of DLA-based radiation and particle sources, such as ultra-high number, high directionality and high conversion efficiency. In this context, the bright synchrotron-like (betatron) radiation of DLA electrons, which arises from the interaction of a sub-ps PHELIX laser pulse with an intensity of 10 W/cm with pre-ionized low-density polymer foam, was studied. The experimental results show that the betatron radiation produced by DLA electrons in NCD plasma is well directed with a half-angle of 100-200 mrad, yielding (3.4 ± 0.4)·10 photons/keV/sr at 10 keV photon energy. The experimental photon fluence and the brilliance agree well with the particle-in-cell simulations. These results pave the way for innovative applications of the DLA regime using low-density pre-ionized foams in high energy density research.
在近临界密度(NCD)等离子体中对电子进行直接激光加速(DLA),对于支持惯性约束聚变研究的中等相对论强度的高能拍瓦级激光器来说,是一个非常先进的平台。在PHELIX亚拍瓦钕玻璃激光器上进行的实验展示了基于DLA的辐射源和粒子源具有应用前景的特性,例如超高数量、高方向性和高转换效率。在此背景下,研究了由强度为10 W/cm的亚皮秒PHELIX激光脉冲与预电离的低密度聚合物泡沫相互作用产生的DLA电子的类同步辐射(电子感应加速器辐射)。实验结果表明,NCD等离子体中DLA电子产生的电子感应加速器辐射方向良好,半角为100 - 200 mrad,在10 keV光子能量下产生(3.4±0.4)·10个光子/keV/sr。实验光子注量和亮度与粒子模拟结果吻合良好。这些结果为在高能量密度研究中使用低密度预电离泡沫的DLA机制的创新应用铺平了道路。