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Simulating macroscopic high-order harmonic generation driven by structured laser beams using artificial intelligence

delete2023-10-01
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J
José Miguel Pablos-Marín
J
Javier Serrano *
C
Carlos Hernández-García
DOI:10.1016/j.cpc.2023.108823delete
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摘要

摘要

En 中文
Artificial intelligence, and in particular deep learning, is becoming a powerful tool to access complex simulations in intense ultrafast laser science. One of the most challenging tasks to model strongfield physics, and in particular, high-order harmonic generation (HHG), is to accurately describe the microscopic quantum picture-that takes place at the sub-nanometer/attosecond spatiotemporal scales- together with the macroscopic one-at the millimeter/femtosecond scales-to reproduce experimental conditions. The exact description would require to couple the laser-driven wavepacket dynamics given by the three-dimensional time-dependent Schrodinger equation (3D-TDSE) with the Maxwell equations, to account for propagation. However, such simulations are beyond the state-of-the-art computational capabilities, and approximations are required. Here we introduce the use of artificial intelligence to compute macroscopic HHG simulations where the single-atom wavepacket dynamics are described by the 3D-TDSE. We use neural networks to infer the 3D-TDSE microscopic HHG response, which is coupled with the exact solution of the integral Maxwell equations to account for harmonic phase-matching. This method is especially suited to compute macroscopic HHG driven by structured laser beams carrying orbital angular momentum within minutes or even seconds. Our work introduces an alternative and fast route to accurately compute extreme-ultraviolet/x-ray attosecond pulse generation. & COPY; 2023 The Author(s). Published by Elsevier B.V. This is an open access article under the CC BY license (http://creativecommons .org /licenses /by /4 .0/).
Keyword:
High harmonic generation
Attosecond science
Artificial intelligence
Time dependent Schrodinger equation
Structured light
Ultrafast science
Nonlinear optics
Strong-field physics
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期刊

Computer Physics Communications 封面图
Computer Physics Communications
IF:
3.4
论文数:
1.2W
被引数:
3.7W

机构

U
University of Salamanca
学者数:
1.1W
论文数: 8.1K
被引数: 9
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