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Oscillatory regimes of Langmuir probe current in femtosecond laser- produced plasmas: Experimental and theoretical investigations

机译:飞秒激光产生的等离子体中Langmuir探针电流的振荡机制:实验和理论研究

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摘要

We investigate the oscillatory regimes of the Langmuir probe current recorded for the electrical characterization of femtosecond laser-produced plasma. The influence of metallic target biasing, which can perturb the ambipolar electric field generated through the charge separation at early stages of the expansion, is also studied. Two distinct behaviors are evidenced, and they point to the existence of two plasma structures: a fast one consisting in promptly ejected highly charged particles, and a slow "tail" of thermalized particles. Theoretically, a non-differentiable model which involves two scale resolutions is developed. Assuming the principle of scale resolution superposition, the current density at global scale is expressed as the sum of the current density at Coulomb and the thermal scale resolutions, in agreement with the experimental data. Interestingly, the theoretical estimation of oscillation frequencies shows a correspondence with the filling factor hierarchy in the fractional quantum Hall effect.
机译:我们调查了飞秒激光产生的等离子体的电特性记录的Langmuir探针电流的振荡状态。还研究了金属靶偏置的影响,该偏置会扰动在膨胀初期通过电荷分离产生的双极性电场。证实了两种不同的行为,它们指出了两种等离子体结构的存在:一种快速的等离子体结构,包括迅速喷射出的带电粒子,以及一种缓慢的“尾巴”热粒子。从理论上讲,开发了涉及两个尺度分辨率的不可微模型。假设尺度分辨率叠加原理,全局尺度上的电流密度表示为库仑电流密度与热尺度分辨率的总和,与实验数据一致。有趣的是,振荡频率的理论估计显示出与分数量子霍尔效应中的填充因子等级相对应。

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