不同密度激光等离子体的趋肤深度和电磁场演化研究

IF 5.6 1区 数学 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Sima Alilou , Laya Shahrassai , Samad Sobhanian
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引用次数: 0

摘要

电磁波在等离子体中的吸收主要受电子密度和等离子体厚度的影响。振荡电场加速电子,然后与中性粒子碰撞,耗散能量。更薄的等离子体层导致更少的碰撞,允许更多的波能量通过,并潜在地增加下游的能量吸收。本文利用经典的德鲁德模型,对激光照射下不同电子密度等离子体的趋肤深度和功率吸收进行了全面的研究。密度梯度的存在通过改变共振区域显著影响激光吸收,因此在激光等离子体相互作用中起着至关重要的作用。分析了趋肤深度和吸收功率随电子密度和碰撞频率等关键等离子体参数的变化规律。结果表明,减小等离子体厚度可提高最大吸收功率。此外,本研究还研究了高功率激光与非均匀等离子体相互作用时电场和磁场的演变,这些等离子体呈现线性和爱泼斯坦密度分布。不像真空的情况下,电场和磁场保持相(零相位差),相位关系在等离子体中变得空间可变。电场平方的负梯度产生非线性力,驱动等离子体烧蚀,将物质向外推向真空,同时压缩等离子体内部。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of the skin depth and electromagnetic field evolution in laser-generated plasma with different density profiles
Electromagnetic waves absorption in plasma is primarily influenced by the electron density and the plasma's thickness. The oscillating electric field accelerates electrons, and then collides with neutral particles, dissipating energy. A thinner plasma layer results in fewer collisions, allowing more wave energy to pass through and potentially increasing energy absorption downstream. This paper presents a comprehensive study, using the classical Drude model, of skin depth and power absorption in plasmas with various electron density profiles under laser irradiation. The presence of a density gradient significantly affects laser absorption by shifting the resonance region, thus playing a crucial role in laser-plasma interactions. The behavior of skin depth and absorbed power is analyzed as functions of key plasma parameters, including electron density and collision frequency. Results indicate that reducing the plasma thickness enhances the maximum absorbed power. Additionally, this study examines the evolution of electric and magnetic fields during high-power laser interaction with inhomogeneous plasmas exhibiting linear and Epstein density profiles. Unlike the vacuum case, where electric and magnetic fields remain in phase (zero-phase difference), the phase relationship becomes spatially variable within the plasma. The negative gradient of the square of the electric field generates nonlinear forces that drive plasma ablation, expelling material outward toward the vacuum, while simultaneously compressing the plasma interior.
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来源期刊
Chaos Solitons & Fractals
Chaos Solitons & Fractals 物理-数学跨学科应用
CiteScore
13.20
自引率
10.30%
发文量
1087
审稿时长
9 months
期刊介绍: Chaos, Solitons & Fractals strives to establish itself as a premier journal in the interdisciplinary realm of Nonlinear Science, Non-equilibrium, and Complex Phenomena. It welcomes submissions covering a broad spectrum of topics within this field, including dynamics, non-equilibrium processes in physics, chemistry, and geophysics, complex matter and networks, mathematical models, computational biology, applications to quantum and mesoscopic phenomena, fluctuations and random processes, self-organization, and social phenomena.
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