Huang Yongsheng, Bi Yuanjie, Shi Yijin, Wang Naiyan, Tang Xiuzhang, Gao Zhe
China Institute of Atomic Energy, Beijing 102413, China.
Phys Rev E Stat Nonlin Soft Matter Phys. 2009 Mar;79(3 Pt 2):036406. doi: 10.1103/PhysRevE.79.036406. Epub 2009 Mar 25.
A two-phase model, where the plasma expansion is an isothermal one when laser irradiates and a following adiabatic one after laser ends, has been proposed to predict the maximum energy of the proton beams induced in the ultraintense laser-foil interactions. The hot-electron recirculation in the ultraintense laser-solid interactions has been accounted in and described by the time-dependent hot-electron density continuously in this model. The dilution effect of electron density as electrons recirculate and spread laterally has been considered. With our model, the scaling laws of maximum ion energy have been achieved and the dependence of the scaling coefficients on laser intensity, pulse duration, and target thickness have been obtained. Some interesting results have been predicted: the adiabatic expansion is an important process of the ion acceleration and cannot be neglected; the whole acceleration time is about 10-20 times of laser-pulse duration; the larger the laser intensity, the more sensitive the maximum ion energy to the change of focus radius, and so on.
为了预测超强激光与箔靶相互作用中产生的质子束的最大能量,提出了一种两阶段模型,其中激光辐照时等离子体膨胀为等温膨胀,激光结束后为绝热膨胀。该模型考虑了超强激光与固体相互作用中的热电子再循环,并通过随时间变化的热电子密度对其进行了连续描述。考虑了电子再循环和横向扩散时电子密度的稀释效应。利用我们的模型,得到了最大离子能量的标度律,并得到了标度系数与激光强度、脉冲持续时间和靶厚度的关系。预测了一些有趣的结果:绝热膨胀是离子加速的一个重要过程,不能忽略;整个加速时间约为激光脉冲持续时间的10-20倍;激光强度越大,最大离子能量对聚焦半径变化越敏感,等等。