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Effect of self-generated axial magnetic field and on propagation of intense laser radiation in plasmas

机译:自生轴向磁场对等离子体中强激光辐射传播的影响

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The present paper deals with an analytical study of a self-generated axial magnetic field (SGAMF) through the inverse Faraday effect (IFE) and its influence on the propagation of circularly polarized light wave for relativistic intensities. As a first step, the non-linear dielectric constant incorporating a magnetic field in the relativistic factor within the framework of WKB (for Wentzel, Kramers, and Brillouin) and a paraxial ray theory is formulated. It is noticed that for intensities (1018 W cm-2), circularly polarized radiation can propagate in electron plasma whose density is greater than the critical density as well as a strong flow of relativistic electrons, axially co-moving with the pulse rise. The above generates a magnetic field up to 100 MG and strongly influences the light propagation. Two modes of propagation exist, namely, extraordinary and ordinary, and critical power for focusing is different for the two modes. The non-linear dielectric tensor, propagation equation, and the self-trapped radius are evaluated incorporating an induced magnetic field. The focusing conditions strongly depend on the power of the beam, strength of the magnetic field as well as on the density of the medium. Numerical calculations are made for a typical set of relativistic laser plasma interaction processes.
机译:本文通过反法拉第效应(IFE)对其自生轴向磁场(SGAMF)进行了分析研究,并研究了相对论强度对圆偏振光波传播的影响。作为第一步,制定了在WKB框架内(相对于Wentzel,Kramers和Brillouin)在相对论因子中结合磁场的非线性介电常数和近轴射线理论。注意到对于强度(1018 W cm-2),圆极化辐射可以在电子等离子体中传播,该电子等离子体的密度大于临界密度,并且相对论电子的强流动与脉冲上升沿轴向共同运动。以上会产生高达100 MG的磁场,并强烈影响光的传播。存在两种传播模式,即非常和普通,并且对于聚焦的临界功率对于这两种模式是不同的。结合感应磁场来评估非线性介电张量,传播方程和自陷半径。聚焦条件在很大程度上取决于光束的功率,磁场强度以及介质的密度。针对一组相对论性激光等离子体相互作用过程进行了数值计算。

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