Institute of Optics and Quantum Electronics, Abbe-Center of Photonics, Friedrich Schiller University, Max-Wien Platz 1, 07743 Jena, Germany.
Nat Commun. 2013;4:2421. doi: 10.1038/ncomms3421.
Laser-plasma particle accelerators could provide more compact sources of high-energy radiation than conventional accelerators. Moreover, because they deliver radiation in femtosecond pulses, they could improve the time resolution of X-ray absorption techniques. Here we show that we can measure and control the polarization of ultra-short, broad-band keV photon pulses emitted from a laser-plasma-based betatron source. The electron trajectories and hence the polarization of the emitted X-rays are experimentally controlled by the pulse-front tilt of the driving laser pulses. Particle-in-cell simulations show that an asymmetric plasma wave can be driven by a tilted pulse front and a non-symmetric intensity distribution of the focal spot. Both lead to a notable off-axis electron injection followed by collective electron-betatron oscillations. We expect that our method for an all-optical steering is not only useful for plasma-based X-ray sources but also has significance for future laser-based particle accelerators.
激光等离子体粒子加速器可以提供比传统加速器更紧凑的高能辐射源。此外,由于它们以飞秒脉冲形式发射辐射,因此可以提高 X 射线吸收技术的时间分辨率。在这里,我们表明我们可以测量和控制从基于激光等离子体的电子回旋加速器源发射的超短宽带 keV 光子脉冲的偏振。电子轨迹,因此发射 X 射线的偏振通过驱动激光脉冲的脉冲前沿倾斜来实验控制。粒子模拟表明,倾斜脉冲前沿和焦点光斑的非对称强度分布可以驱动不对称等离子体波。这两者都会导致明显的离轴电子注入,随后是集体电子回旋振荡。我们预计,我们的全光学转向方法不仅对基于等离子体的 X 射线源有用,而且对未来基于激光的粒子加速器也具有重要意义。