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在非线性朗道阻尼 regime 中,激光会触发拉曼放大增强。 (这里“regime”直接保留英文,因为在专业领域可能没有完全对应的中文词汇,具体含义需结合上下文确定,大致可理解为“状态、 regime”等意思 )

Laser light triggers increased Raman amplification in the regime of nonlinear Landau damping.

作者信息

Depierreux S, Yahia V, Goyon C, Loisel G, Masson-Laborde P-E, Borisenko N, Orekhov A, Rosmej O, Rienecker T, Labaune C

机构信息

CEA, DAM, DIF, F- 91297 Arpajon, France.

1] CEA, DAM, DIF, F- 91297 Arpajon, France [2] LULI, UMR 7605 CNRS-Ecole Polytechnique-CEA-Université Paris VI, 91128 Palaiseau Cedex, France.

出版信息

Nat Commun. 2014 Jun 18;5:4158. doi: 10.1038/ncomms5158.

Abstract

Stimulated Raman backscattering (SRS) has many unwanted effects in megajoule-scale inertially confined fusion (ICF) plasmas. Moreover, attempts to harness SRS to amplify short laser pulses through backward Raman amplification have achieved limited success. In high-temperature fusion plasmas, SRS usually occurs in a kinetic regime where the nonlinear response of the Langmuir wave to the laser drive and its host of complicating factors make it difficult to predict the degree of amplification that can be achieved under given experimental conditions. Here we present experimental evidence of reduced Landau damping with increasing Langmuir wave amplitude and determine its effects on Raman amplification. The threshold for trapping effects to influence the amplification is shown to be very low. Above threshold, the complex SRS dynamics results in increased amplification factors, which partly explains previous ICF experiments. These insights could aid the development of more efficient backward Raman amplification schemes in this regime.

摘要

受激拉曼背向散射(SRS)在兆焦耳级惯性约束聚变(ICF)等离子体中会产生许多不良影响。此外,试图利用SRS通过背向拉曼放大来放大短激光脉冲的尝试取得的成功有限。在高温聚变等离子体中,SRS通常发生在动力学区域,其中朗缪尔波对激光驱动的非线性响应及其一系列复杂因素使得难以预测在给定实验条件下可实现的放大程度。在此,我们展示了随着朗缪尔波振幅增加朗道阻尼降低的实验证据,并确定了其对拉曼放大的影响。捕获效应影响放大的阈值被证明非常低。高于阈值时,复杂的SRS动力学导致放大因子增加,这部分解释了先前的ICF实验。这些见解有助于在该区域开发更高效的背向拉曼放大方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cd5b/4354404/a4d3c65b0dd7/ncomms5158-f1.jpg

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