两个飞秒激光脉冲产生太赫兹辐射效率的数值模拟:阈值以上电离

Abdelrahman Mahdy
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引用次数: 0

摘要

隧道电离(TI)是两个飞秒激光器产生太赫兹辐射中最主要的电离过程,尽管其在某些气体电离阈值以上的有效性尚不确定。在本研究中,我们采用一维流体代码来模拟两个飞秒激光束在空气等离子体中产生的太赫兹辐射的效率。在TI过程背景下的两个电离模型,即惰性气体的Ammosov-Delone-Krainov (ADK)模型和其开发的分子气体的分子ADK (MO-ADK)模型,本质上用于进行本研究。本研究的主要目标是检验这些气体阈值以上电离(ATI)模型的有效性。为此,我们模拟了产生的辐射的电离率和功率谱,并数值计算了产生的辐射效率与输入光束强度在特定能量分数因子、相对相位和这些光束的初始脉冲持续时间的关系。这些计算是对不同能级的选定惰性气体和不同量子数的选定分子空气等离子体气体进行的。在所选气体电离阈值附近和以上的数值结果表明,ADK和MO-ADK模型对于研究所选气体在低能级和小量子数下产生的太赫兹辐射的效率是成功有效的,同时,随着所选气体能级和量子数的进一步增加,ADK和MO-ADK模型都不能正确分析效率过程和估计其基本参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Simulation for the Efficiency of the Produced Terahertz Radiation by Two Femtosecond Laser Pulses: Above-Threshold-Ionization
The tunneling ionization (TI) is the most dominated ionization process in the production of terahertz radiation by two femtosecond lasers, although its validity above the ionization threshold of some gases is uncertain. In the present research, we employ a 1D fluid code to simulate the efficiency of the produced terahertz radiation by two femtosecond laser beams in air plasma. Two ionization models in the context of the TI process which are the Ammosov-Delone-Krainov (ADK) for noble gases and its developed molecular ADK (MO-ADK) model for molecular gases are intrinsically used to conduct this study. The main target of the present research is to examine the validity of these models Above-Threshold-Ionization (ATI) of these gases. For this purpose, we simulated the ionization rate and the power spectrum of the produced radiation, in addition we numerically evaluated the efficiency of the produced radiation as function of the input beams intensity at particular energy fraction factor, relative phase and initial pulse duration of these beams. These calculations conducted for a selected noble gas at varying energy levels and a chosen molecular air plasma gas at different quantum numbers. Numerical results near and above the ionization threshold of the selected gases have clarified that the ADK and MO-ADK model are successful valid to study the efficiency of the produced THz radiation at low energy levels and small quantum numbers of the selected gases, meanwhile, with any further increase in the energy level and the quantum number values of these gases, both of the ADK and MO-ADK are failed to correctly analyze the efficiency process and estimate its fundamental parameters.
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