Zhang W L, Grismayer T, Schoeffler K M, Fonseca R A, Silva L O
GoLP/Instituto de Plasmas e Fusão Nuclear, Instituto Superior Técnico, Universidade de Lisboa, Lisboa, Portugal.
DCTI/ISCTE-Instituto Universitário de Lisboa, 1649-026 Lisboa, Portugal.
Phys Rev E. 2021 Jan;103(1-1):013206. doi: 10.1103/PhysRevE.103.013206.
The laser interaction with an electron-positron-ion mixed plasma is studied from the perspective of the associated high-order harmonic generation. For an idealized mixed plasma which is assumed with a sharp plasma-vacuum interface and uniform density distribution, when it is irradiated by a weakly relativistic laser pulse, well-defined signals at harmonics of the plasma frequency in the harmonic spectrum are observed. These characteristic signals are attributed to the inverse two-plasmon decay of the counterpropagating monochromatic plasma waves which are excited by the energetic electrons and the positron beam accelerated by the laser. Particle-in-cell simulations show the signal at twice the plasma frequency can be observed for a pair density as low as ∼10^{-5} of the plasma density. In the self-consistent scenario of pair production by an ultraintense laser striking a solid target, particle-in-cell simulations, which account for quantum electrodynamic effects (photon emission and pair production), show that dense (greater than the relativistically corrected critical density) and hot pair plasmas can be created. The harmonic spectrum shows weak low-order harmonics, indicating a high laser absorption due to quantum electrodynamic effects. The characteristic signals at harmonics of the plasma frequency are absent, because broadband plasma waves are excited due to the high plasma inhomogeneity introduced by the interaction. However, the high-frequency harmonics are enhanced due to the high-frequency modulations from the direct laser coupling with created pair plasmas.
从相关的高次谐波产生的角度研究了激光与电子 - 正电子 - 离子混合等离子体的相互作用。对于一个理想化的混合等离子体,假设其具有清晰的等离子体 - 真空界面且密度分布均匀,当它受到弱相对论激光脉冲照射时,在谐波谱中观察到了等离子体频率谐波处定义明确的信号。这些特征信号归因于由激光加速的高能电子和正电子束激发的反向传播单色等离子体波的逆双等离子体衰变。粒子模拟显示,对于低至等离子体密度约10^(-5)的对密度,可以观察到等离子体频率两倍处的信号。在超强激光撞击固体靶产生对的自洽场景中,考虑量子电动力学效应(光子发射和对产生)的粒子模拟表明,可以产生密集(大于相对论修正的临界密度)且热的对等离子体。谐波谱显示出较弱的低阶谐波,表明由于量子电动力学效应导致高激光吸收。由于相互作用引入的高等离子体不均匀性激发了宽带等离子体波,因此不存在等离子体频率谐波处的特征信号。然而,由于直接激光与产生的对等离子体的耦合产生的高频调制,高频谐波得到了增强。