Impact of High-Power Cosh-Gaussian Beam on Second Harmonic Generation in Collisionless Magnetoplasma

IF 0.5 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY
T. Singh, K. Walia
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引用次数: 0

Abstract

The impact of high power Cosh-Gaussian (ChG) beam on Second harmonic generation (SHG) in Collisionless magnetoplasma is explored in present work. Whenever the input beam propagates along external magnetic magnetic field direction, then there are two propagation modes viz. extraordinary mode and ordinary mode. The modification in magnetic field strength causes redistribution of carriers. The density gradients get established in plasma in a normal direction to input wave due to ponderomotive force. Further, there is production of electron plasma wave (EPW) at input wave frequency due to density gradients. EPW nonlinearly interacts with pump wave causing generation of 2nd harmonics. The 2nd order differential equation (ODE) for beam width of and efficiency of 2nd harmonics are derived through well-known paraxial theory approach. RK4 method is employed for carrying out numerical calculation of nonlinear ODE along with efficiency of 2nd harmonics. Impact of change in selective laser-plasma parameters and externally applied magnetic field on beam waist of input wave and efficiency of SHG are also explored.

Abstract Image

高功率cosh -高斯光束对无碰撞磁等离子体二次谐波产生的影响
本文研究了高功率Cosh-Gaussian光束对无碰撞磁等离子体中二次谐波产生的影响。当输入光束沿外磁场方向传播时,有两种传播模式,即超常模式和普通模式。磁场强度的改变引起载流子的重新分布。由于有质动势的作用,等离子体在入射波的法向方向上建立了密度梯度。此外,由于密度梯度,在输入波频率处产生电子等离子体波(EPW)。EPW与泵浦波非线性相互作用,产生二次谐波。利用著名的近轴理论推导了二次谐波的光束宽度和效率的二阶微分方程。采用RK4方法对非线性ODE进行了二次谐波效率的数值计算。探讨了选择性激光等离子体参数和外加磁场的变化对输入波束腰和SHG效率的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.00
自引率
66.70%
发文量
43
审稿时长
6-12 weeks
期刊介绍: Journal of Contemporary Physics (Armenian Academy of Sciences) is a journal that covers all fields of modern physics. It publishes significant contributions in such areas of theoretical and applied science as interaction of elementary particles at superhigh energies, elementary particle physics, charged particle interactions with matter, physics of semiconductors and semiconductor devices, physics of condensed matter, radiophysics and radioelectronics, optics and quantum electronics, quantum size effects, nanophysics, sensorics, and superconductivity.
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