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Time-frequency control of ultrafast plasma generation in dielectrics

机译:电介质中超快等离子体生成的时频控制

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This paper examines ultrafast laser-induced plasma generation in dielectrics by modeling ionization and pulse propagation in glass. Photoionization models for solids predict that the multi-photon ionization rate should increase for near-UV frequencies when compared to those in the visible or near-IR. Conversely, the frequency dependence of a Drude-type absorption by free electrons can produce an increased ionization yield through avalanching for frequencies in the IR. The simulations presented in this paper reveal how such frequency-dependent models influence the plasma formation during nonlinear pulse propagation in fused silica. It is further shown by a multi-rate equation model that the contribution from avalanching, when properly delayed, is reduced by an order of magnitude at near-IR frequencies throughout the propagation. A modified multi-rate equation is then introduced to model combinations of ultrashort high-frequency and low-frequency pulses that can maximize plasma generation while operating at the lowest possible fluences. (C) 2014 Optical Society of America
机译:本文通过对玻璃中的电离和脉冲传播进行建模,研究了电介质中超快激光诱导的等离子体生成。固体光电离模型预测,与可见光或近红外光相比,近紫外频率的多光子电离速率应增加。相反,自由电子的Drude型吸收的频率依赖性可以通过雪崩红外光产生更高的电离产率。本文介绍的仿真揭示了这种频率相关的模型如何影响熔融石英中非线性脉冲传播过程中的等离子体形成。多速率方程模型进一步表明,雪崩的贡献(如果适当延迟)在整个传播过程中会在近红外频率上减小一个数量级。然后,引入了经过修改的多速率方程式,以对超短高频和低频脉冲的组合进行建模,该组合可以最大程度地产生等离子体,同时以最低的通量运行。 (C)2014年美国眼镜学会

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