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Photokinetic analysis of the forces and torques exerted by optical tweezers carrying angular momentum

机译:光镊对夹角动量施加的力和扭矩的光动力学分析

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摘要

The theory of photokinetic effects expresses the forces and torques exerted by a beam of light in terms of experimentally accessible amplitude and phase profiles. We use this formalism to develop an intuitive explanation for the performance of optical tweezers operating in the Rayleigh regime, including effects arising from the influence of light’s angular momentum. First-order dipole contributions reveal how a focused beam can trap small objects, and what features limit the trap’s stability. The first-order force separates naturally into a conservative intensity-gradient term that forms a trap and a non-conservative solenoidal term that drives the system out of thermodynamic equilibrium. Neither term depends on the light’s polarization; light’s spin angular momentum plays no role at dipole order. Polarization-dependent effects, such as trap-strength anisotropy and spin-curl forces, are captured by the second-order dipole-interference contribution to the photokinetic force. The photokinetic expansion thus illuminates how light’s angular momentum can be harnessed for optical micromanipulation, even in the most basic optical traps.This article is part of the themed issue ‘Optical orbital angular momentum’.
机译:光动力学效应理论用实验上可达到的幅度和相位分布来表达光束施加的力和扭矩。我们使用这种形式主义来对在瑞利体制下工作的光镊的性能做出直观的解释,包括由于光的角动量影响而产生的效果。一阶偶极子贡献揭示了聚焦束如何捕获小物体,以及哪些特征限制了陷阱的稳定性。一阶力自然地分为形成陷阱的保守强度梯度项和使系统脱离热力学平衡的非保守螺线管项。这两个术语都不取决于光的偏振。光的自旋角动量在偶极子阶上不起作用。极化相关的效应,例如陷阱强度各向异性和自旋卷曲力,是由对光动力的二阶偶极干扰贡献所捕获的。因此,光动力学的扩展阐明了如何利用角角动量进行光学显微操作,即使在最基本的光学陷阱中也是如此。本文是“光学轨道角动量”主题的一部分。

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