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首页> 外文期刊>Journal of optics >Theoretical investigation on optical Kerr effect in femtosecond laser trapping of dielectric microspheres
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Theoretical investigation on optical Kerr effect in femtosecond laser trapping of dielectric microspheres

机译:电介质微球飞秒激光诱捕中光学克尔效应的理论研究

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摘要

Stable trapping of individual dielectric nanoparticles under high-repetition-rate ultrafast pulsed excitation has been demonstrated and theoretically explained based on repetitive instantaneous trapping as well as optical nonlinearity assisted trapping. Here we estimate the force exerted on a micron-sized spherical dielectric particle including optical Kerr effect. Using geometric optics approximation, we show how inclusion of optical Kerr effect results in significant change of the force curves along axial direction under femtosecond pulsed excitation compared with continuous-wave excitation. The results show excellent agreement with previous experimental findings. Most importantly, similar to the optical trapping of nanoparticles under ultrafast pulsed excitation, we show that the efficiency of trapping of micron-sized particles is also governed by the barrier height (and not the absolute depth) of the axial trapping potential.
机译:在高重复速率超快脉冲激发下稳定地捕获了在高重复超快脉冲激励下,并基于重复瞬时捕获以及光学非线性辅助捕获的理论上解释。 在这里,我们估计在包括光学克尔效应的微米尺寸球形介电颗粒上施加的力。 使用几何光学逼近,我们展示了光学克尔效应的含义如何导致沿着飞秒脉冲激励下的轴向方向的力曲线的显着变化,与连续波激励相比。 结果表现出与以前的实验结果非常一致。 最重要的是,类似于超快脉冲激励下纳米颗粒的光学捕获,我们表明微米尺寸粒子的捕获效率也由轴向捕获电位的屏障高度(而不是绝对深度)来控制。

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