Li Han-Zhen, Yu Tong-Pu, Liu Jin-Jin, Yin Yan, Zhu Xing-Long, Capdessus Remi, Pegoraro Francesco, Sheng Zheng-Ming, McKenna Paul, Shao Fu-Qiu
College of Science, National University of Defense Technology, Changsha, 410073, China.
SUPA, Department of Physics, University of Strathclyde, Glasgow, G4 0NG, UK.
Sci Rep. 2017 Dec 11;7(1):17312. doi: 10.1038/s41598-017-17605-6.
Matter can be transferred into energy and the opposite transformation is also possible by use of high-power lasers. A laser pulse in plasma can convert its energy into γ-rays and then e e pairs via the multi-photon Breit-Wheeler process. Production of dense positrons at GeV energies is very challenging since extremely high laser intensity ~10 Wcm is required. Here we propose an all-optical scheme for ultra-bright γ-ray emission and dense positron production with lasers at intensity of 10 Wcm. By irradiating two colliding elliptically-polarized lasers onto two diamondlike carbon foils, electrons in the focal region of one foil are rapidly accelerated by the laser radiation pressure and interact with the other intense laser pulse which penetrates through the second foil due to relativistically induced foil transparency. This symmetric configuration enables efficient Compton back-scattering and results in ultra-bright γ-photon emission with brightness of ~10 photons/s/mm/mrad/0.1%BW at 15 MeV and intensity of 5 × 10 Wcm. Our first three-dimensional simulation with quantum-electrodynamics incorporated shows that a GeV positron beam with density of 2.5 × 10 cm and flux of 1.6 × 10/shot is achieved. Collective effects of the pair plasma may be also triggered, offering a window on investigating laboratory astrophysics at PW laser facilities.
物质可以转化为能量,反之,利用高功率激光也可以实现能量到物质的转化。等离子体中的激光脉冲可以通过多光子 Breit-Wheeler 过程将其能量转化为γ射线,进而产生正负电子对。在GeV能量下产生高密度正电子极具挑战性,因为需要极高的激光强度~10 W/cm²。在此,我们提出一种全光方案,用于在强度为10 W/cm²的激光下实现超亮γ射线发射和高密度正电子产生。通过将两束碰撞的椭圆偏振激光照射到两个类金刚石碳箔上,一个箔片焦点区域内的电子因激光辐射压力而被快速加速,并与另一束强激光脉冲相互作用,该强激光脉冲由于相对论诱导的箔片透明性而穿透第二个箔片。这种对称配置能够实现高效的康普顿背散射,并产生超亮的γ光子发射,在15 MeV时亮度约为10 photons/s/mm/mrad/0.1%BW,强度为5×10 W/cm²。我们首次纳入量子电动力学的三维模拟表明,可实现密度为2.5×10 cm⁻³、通量为1.6×10⁹/shot的GeV正电子束。正负电子对等离子体的集体效应也可能被触发,为在拍瓦激光装置上研究实验室天体物理学提供了一个窗口。