Lindner F H, Bin J H, Englbrecht F, Haffa D, Bolton P R, Gao Y, Hartmann J, Hilz P, Kreuzer C, Ostermayr T M, Rösch T F, Speicher M, Parodi K, Thirolf P G, Schreiber J
Lehrstuhl für Experimentalphysik - Medizinische Physik, Fakultät für Physik, Ludwig-Maximilians-Universität München, Am Coulombwall 1, 85748 Garching bei München, Germany.
Rev Sci Instrum. 2018 Jan;89(1):013301. doi: 10.1063/1.5001990.
Laser-based ion acceleration is driven by electrical fields emerging when target electrons absorb laser energy and consecutively leave the target material. A direct correlation between these electrons and the accelerated ions is thus to be expected and predicted by theoretical models. We report on a modified wide-angle spectrometer, allowing the simultaneous characterization of angularly resolved energy distributions of both ions and electrons. Equipped with online pixel detectors, the RadEye1 detectors, the investigation of this correlation gets attainable on a single shot basis. In addition to first insights, we present a novel approach for reliably extracting the primary electron energy distribution from the interfering secondary radiation background. This proves vitally important for quantitative extraction of average electron energies (temperatures) and emitted total charge.
基于激光的离子加速是由靶电子吸收激光能量并相继离开靶材料时产生的电场驱动的。因此,可以预期这些电子与加速离子之间存在直接关联,并由理论模型进行预测。我们报告了一种改进的广角光谱仪,它能够同时表征离子和电子的角分辨能量分布。配备了在线像素探测器RadEye1探测器后,就可以单次实现对这种关联的研究。除了初步的见解之外,我们还提出了一种从干扰的二次辐射背景中可靠提取初级电子能量分布的新方法。这对于定量提取平均电子能量(温度)和发射的总电荷至关重要。