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Amplification and generation of ultra-intense twisted laser pulses via stimulated Raman scattering

机译:通过受激拉曼散射放大和产生超强扭曲激光脉冲

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摘要

Twisted Laguerre–Gaussian lasers, with orbital angular momentum and characterized by doughnut-shaped intensity profiles, provide a transformative set of tools and research directions in a growing range of fields and applications, from super-resolution microcopy and ultra-fast optical communications to quantum computing and astrophysics. The impact of twisted light is widening as recent numerical calculations provided solutions to long-standing challenges in plasma-based acceleration by allowing for high-gradient positron acceleration. The production of ultra-high-intensity twisted laser pulses could then also have a broad influence on relativistic laser–matter interactions. Here we show theoretically and with ab initio three-dimensional particle-in-cell simulations that stimulated Raman backscattering can generate and amplify twisted lasers to petawatt intensities in plasmas. This work may open new research directions in nonlinear optics and high–energy-density science, compact plasma-based accelerators and light sources.
机译:扭曲的Laguerre-Gaussian激光器具有轨道角动量,并具有环形的强度分布特征,在从超分辨率显微镜和超快速光学通信到量子的日益广泛的领域和应用中,提供了一组变革性的工具和研究方向计算和天体物理学。扭曲光的影响正在扩大,因为最近的数值计算通过允许高梯度正电子加速为基于等离子体的加速中长期存在的挑战提供了解决方案。这样,超高强度扭曲激光脉冲的产生也可能对相对论的激光物质相互作用产生广泛的影响。在这里,我们从理论上并且从头开始进行三维三维模拟,显示了受激拉曼反向散射可以产生并放大扭曲的激光,使其达到等离子体中的PB强度。这项工作可能会在非线性光学和高能量密度科学,紧凑型基于等离子体的加速器和光源方面开辟新的研究方向。

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