van der Wiel M J, Luiten O J, Brussaard G J H, van der Geer S B, Urbanus W H, van Dijk W, van Oudheusden Th
Center for Plasma Physics and Radiation Technology, Eindhoven University of Technology Department of Applied Physics PO Box 513, 5600 MB Eindhoven, The Netherlands.
Philos Trans A Math Phys Eng Sci. 2006 Mar 15;364(1840):679-87. doi: 10.1098/rsta.2005.1731.
External injection of electron bunches into laser-driven plasma waves so far has not resulted in 'controlled' acceleration, i.e. production of bunches with well-defined energy spread. Recent simulations, however, predict that narrow distributions can be achieved, provided the conditions for properly trapping the injected electrons are met. Under these conditions, injected bunch lengths of one to several plasma wavelengths are acceptable. This paper first describes current efforts to demonstrate this experimentally, using state-of-the-art radio frequency technology. The expected charge accelerated, however, is still low for most applications. In the second part, the paper addresses a number of novel concepts for significant enhancement of photo-injector brightness. Simulations predict that, once these concepts are realized, external injection into a wakefield accelerator will lead to accelerated bunch specs comparable to those of recent 'laser-into-gasjet' experiments, without the present irreproducibility of charge and final energy of the latter.
到目前为止,将电子束团外部注入激光驱动的等离子体波尚未实现“可控”加速,即产生具有明确能量展宽的束团。然而,最近的模拟预测,只要满足正确捕获注入电子的条件,就可以实现窄分布。在这些条件下,注入的束团长度为一到几个等离子体波长是可以接受的。本文首先描述了目前利用最先进的射频技术进行实验验证的努力。然而,对于大多数应用来说,预期加速的电荷量仍然很低。在第二部分中,本文探讨了一些显著提高光注入器亮度的新颖概念。模拟预测,一旦这些概念得以实现,向尾场加速器的外部注入将产生与最近“激光-气体喷流”实验相当的加速束团规格,而不会出现后者目前电荷和最终能量不可重复的问题。