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Laser wakefield acceleration with high-power, few-cycle mid-IR lasers

机译:高功率,少周期的中红外激光器的激光尾场加速

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The study of laser wakefield electron acceleration (LWFA) using mid-IR laser drivers is a promising path for future laser driven electron accelerators, when compared to traditional near-IR laser drivers operating at 0.8-1 mu m central wavelength (lambda(laser)), as the necessary vector potential (a(0)) for electron injection can be achieved with smaller laser powers due to the linear dependence on lambda(laser). In this work, we perform 2D PIC simulations on LWFA using few-cycle, high power (5-15 TW) laser systems with lambda(laser) ranging from 0.88 to 10 mu m. Such fewcycle systems are currently under development, aiming at Gas High Harmonics Generation applications, where the favorable lambda(2)(laser) scaling extends the range of the XUV photon energies. We keep a(0) and n(e)(cr) (n(e) being the plasma density and n(cr) the critical density for each lambda(laser)) as common denominators in our simulations, allowing for comparisons between drivers with different lambda(laser), with respect to the accelerated electron beam energy, charge and conversion efficiency. While the electron energies are mainly dominated by the plasma dynamics, the laser to electron beam energy conversion efficiency shows significant enhancement with longer wavelength laser drivers. (c) 2018 Elsevier B.V. All rights reserved.
机译:与在中心波长为0.8-1μm的传统近红外激光驱动器相比,使用中红外激光驱动器进行激光尾场电子加速(LWFA)的研究为未来的激光驱动电子加速器提供了一条有希望的途径),因为由于对lambda(laser)的线性依赖性,可以用较小的激光功率实现电子注入所需的矢量电势(a(0))。在这项工作中,我们使用具有0.88至10μm的lambda(激光)的少周期,高功率(5-15 TW)激光系统对LWFA进行2D PIC仿真。这样的为数不多的循环系统目前正在开发中,其目标是气体高次谐波产生应用,其中有利的lambda(2)(laser)缩放扩展了XUV光子能量的范围。我们在模拟中保持a(0)和n(e)/ n(cr)(n(e)为等离子体密度,n(cr)为每个lambda(激光)的临界密度)作为共同指标,以便进行比较在具有不同λ(激光)的驱动器之间,就加速电子束能量,电荷和转换效率而言。尽管电子能量主要由等离子体动力学决定,但使用更长波长的激光驱动器,激光到电子束的能量转换效率会显着提高。 (c)2018 Elsevier B.V.保留所有权利。

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