Hafz N, Hur M S, Kim G H, Kim C, Ko I S, Suk H
Center for Advanced Accelerators, Korea Electrotechnology Research Institute, Changwon 641-120, Korea.
Phys Rev E Stat Nonlin Soft Matter Phys. 2006 Jan;73(1 Pt 2):016405. doi: 10.1103/PhysRevE.73.016405. Epub 2006 Jan 25.
A relativistic electron bunch with a large charge (>2 nC) was produced from a self-modulated laser wakefield acceleration configuration. For this experiment, an intense laser beam with a peak power of 2 TW and a duration of 700 fs was focused in a supersonic He gas jet, and relativistic high-energy electrons were observed from the strong laser-plasma interaction. By passing the electron bunch through a small pinholelike collimator, we could generate a quasimonoenergetic high-energy electron beam, in which electrons within a cone angle of 0.25 mrad (f/70) were selected. The beam clearly showed a narrow-energy-spread behavior with a central energy of 4.3 MeV and a charge of 200 pC. The acceleration gradient was estimated to be about 30 GeV/m. Particle-in-cell simulations were performed for comparison study and the result shows that both the experimental and simulation results are in good agreement and the electron trapping is initiated by the slow beat wave of the Raman backward wave and the incident laser pulse.
利用自调制激光尾场加速装置产生了一个大电荷量(>2 nC)的相对论电子束团。在该实验中,将一束峰值功率为2太瓦、持续时间为700飞秒的强激光束聚焦在一个超声速氦气喷流中,通过强激光 - 等离子体相互作用观测到了相对论性高能电子。通过使电子束团穿过一个小孔状准直器,我们能够产生一个准单能高能电子束,其中选取了锥角为0.25毫弧度(f/70)内的电子。该束流明显呈现出窄能量展宽特性,中心能量为4.3兆电子伏特,电荷量为200皮库。加速梯度估计约为30吉电子伏特/米。进行了粒子模拟对比研究,结果表明实验结果与模拟结果吻合良好,且电子俘获是由拉曼后向波的慢拍波和入射激光脉冲引发的。