论文标题
飞秒丝清除大气气雾剂
Atmospheric aerosol clearing by femtosecond filaments
论文作者
论文摘要
大气气溶胶,例如雾中的水滴,通过散射和吸收来干扰激光传播。飞秒的光丝丝已显示可清除雾气区域,从而改善了随后的脉冲的传播。但是,详细的雾化机制尚未确定。在这里,我们直接测量并模拟了典型的雾的〜5微米半径水滴的动力学,这是飞秒丝的光学和声学相互作用的影响。我们发现,对于通过准直近红外飞秒脉冲崩溃而产生的细丝,主液滴清除机制是激光光的光学破碎。对于这样的细丝,空气叶液滴中的细丝能量沉积发射的单个周期声波完好无损,并驱动可忽略不计的横向位移,因此可以忽略不计。仅对于局部能量沉积大大超过细丝的焦点脉冲紧密而浓缩,声波会显着置换气溶胶。
Atmospheric aerosols, such as water droplets in fog, interfere with laser propagation through scattering and absorption. Femtosecond optical filaments have been shown to clear foggy regions, improving transmission of subsequent pulses. However, the detailed fog clearing mechanism had yet to be determined. Here we directly measure and simulate the dynamics of ~5 micron radius water droplets, typical of fog, under the influence of optical and acoustic interactions characteristic of femtosecond filaments. We find that for filaments generated by the collapse of collimated near-infrared femtosecond pulses, the main droplet clearing mechanism is optical shattering by laser light. For such filaments, the single cycle acoustic wave launched by filament energy deposition in air leaves droplets intact and drives negligible transverse displacement, and therefore negligible fog clearing. Only for tightly focused non-filamentary pulses, where local energy deposition greatly exceeds that of a filament, do acoustic waves significantly displace aerosols.