论文标题
控制电子加热的最佳激光辐射压力离子加速度的控制
On the control of electron heating for optimal laser radiation pressure ion acceleration
论文作者
论文摘要
我们研究了激烈激光固体相互作用中电子加热的发作及其对孔钻孔和轻型航行方案中辐射压加速离子的光谱质量的影响。在广泛的激光器和目标参数上进行二维和三维粒子模拟(PIC)模拟,并揭示脉冲持续时间,轮廓,极化和目标表面稳定性如何控制电子加热,显性离子加速度机理和离子光谱。我们发现,强电子加热的发作与前表面的雷利 - 泰勒样不稳定的生长有关,即使使用圆形极化激光器,也必须控制高质量的离子束。我们在激光脉冲的最大持续时间内定义了阈值条件,该阈值允许狭窄能量扩散离子束的电子加热和辐射压力加速。该模型通过三维PIC模拟验证,并且少数报道低能辐射压力加速离子束的实验研究似乎符合衍生标准。我们的工作提供的理解对于指导未来的实验发展至关重要,例如,对于最先进的激光设施可用的超短激光脉冲,我们预测,proton梁具有〜150-250 meV,〜30%的能量传播,并且可以产生〜20%的〜20%的激光对螺旋藻转化效率。
We study the onset of electron heating in intense laser-solid interactions and its impact on the spectral quality of radiation pressure accelerated ions in both hole boring and light sail regimes. Two- and three-dimensional particle-in-cell (PIC) simulations are performed over a wide range of laser and target parameters and reveal how the pulse duration, profile, polarization, and target surface stability control the electron heating, the dominant ion acceleration mechanisms, and the ion spectra. We find that the onset of strong electron heating is associated with the growth of the Rayleigh-Taylor-like instability at the front surface and must be controlled to produce high-quality ion beams, even when circularly polarized lasers are employed. We define a threshold condition for the maximum duration of the laser pulse that allows mitigation of electron heating and radiation pressure acceleration of narrow energy spread ion beams. The model is validated by three-dimensional PIC simulations, and the few experimental studies that reported low energy spread radiation pressure accelerated ion beams appear to meet the derived criteria. The understanding provided by our work will be important in guiding future experimental developments, for example for the ultrashort laser pulses becoming available at state-of-the-art laser facilities, for which we predict that proton beams with ~150 - 250 MeV, ~30% energy spread, and a total laser-to-proton conversion efficiency of ~20% can be produced.