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激光驱动的高阶谐波产生中的电子多散射动力学研究。

Exploration of laser-driven electron-multirescattering dynamics in high-order harmonic generation.

机构信息

College of Physics and Electronic Engineering, Northwest Normal University, Lanzhou 730070, China.

Center for Quantum Science and Engineering, and Center for Advanced Study in Theoretical Sciences, Department of Physics, National Taiwan University, Taipei 10617, Taiwan.

出版信息

Sci Rep. 2016 Sep 6;6:32763. doi: 10.1038/srep32763.

Abstract

Multiple rescattering processes play an important role in high-order harmonic generation (HHG) in an intense laser field. However, the underlying multi-rescattering dynamics are still largely unexplored. Here we investigate the dynamical origin of multiple rescattering processes in HHG associated with the odd and even number of returning times of the electron to the parent ion. We perform fully ab initio quantum calculations and extend the empirical mode decomposition method to extract the individual multiple scattering contributions in HHG. We find that the tunneling ionization regime is responsible for the odd number times of rescattering and the corresponding short trajectories are dominant. On the other hand, the multiphoton ionization regime is responsible for the even number times of rescattering and the corresponding long trajectories are dominant. Moreover, we discover that the multiphoton- and tunneling-ionization regimes in multiple rescattering processes occur alternatively. Our results uncover the dynamical origin of multiple rescattering processes in HHG for the first time. It also provides new insight regarding the control of the multiple rescattering processes for the optimal generation of ultrabroad band supercontinuum spectra and the production of single ultrashort attosecond laser pulse.

摘要

多次散射过程在强激光场中的高次谐波产生(HHG)中起着重要作用。然而,其背后的多散射动力学仍在很大程度上未被探索。在这里,我们研究了与电子返回到母离子的奇数和偶数返回次数相关的 HHG 中多次散射过程的动力学起源。我们进行了完全从头计算,并扩展了经验模态分解方法以提取 HHG 中的各个多次散射贡献。我们发现,隧道电离区负责奇数次散射,并且对应的短轨迹是主要的。另一方面,多光子电离区负责偶数次散射,并且对应的长轨迹是主要的。此外,我们发现多次散射过程中的多光子和隧道电离区是交替发生的。我们的结果首次揭示了 HHG 中多次散射过程的动力学起源。它还为控制多次散射过程以优化产生超宽带超连续谱和产生单个超短阿秒激光脉冲提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b6f/5011722/63f58a388226/srep32763-f1.jpg

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