通过非线性射线追踪计算电介质球上的光学激光陷阱力

Qin Yu, B. Hennelly
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引用次数: 0

摘要

非线性射线是由 eikonal 函数描述的,它在波光学和几何光学之间架起了一座桥梁。这些非线性射线在空间传播时所遵循的路径始终与相位前沿法线一致。在本文中,我们将探讨如何增强经典的几何射线光学方法,以计算阿什金开发的光学陷阱中作用在球体上的力,从而在计算中用非线性射线代替线性射线。这种方法的最大优点是能够利用拉盖尔-高斯空间模式激光器模拟球体所受的轨道角动量。与任何会聚波场相关的非线性射线都可以追踪到它们在球面上的交点,对于每一条 "射线",都可以使用阿什金定义的方程得出散射力、梯度力和扭矩。对这些力进行积分,就可以得出作用在球面上的总三维力以及总旋转力,而总旋转力又可以分解为 "垂直力矩 "和 "水平力矩"。除了研究阿什金模型中的单梁介质陷阱外,我们还研究了所有情况下的双梁陷阱,它具有增强陷阱力的优点。
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Nonlinear ray tracing to calculate the forces of an optical laser trap on a dielectric sphere
Nonlinear rays are described by the eikonal function, which bridges the gap between wave and geometrical optics. These nonlinear rays follow a path that is always normal to the phase front as it propagates in space. In this paper, we explore how to augment the classical geometrical ray-optics approach to calculate the forces acting on the sphere in an optical trap developed by Ashkin, such that non-linear rays can replace linear rays in the calculation. The greatest advantage of such an approach would be be the capacity to model the orbital angular momentum imparted on the sphere using a Laguerre-Gaussian spatial mode laser. The non-linear rays associated with any convering wavefield can be traced towards their intersection point on the surface of the sphere and for each one of these ’rays’, the scattering force, gradient force, and torque can be derived using the Equations defined by Ashkin. Integration of these forces reveals the total three-dimensional force acting on the sphere as well as total rotational forces which can be decomposed into a ’vertical torque’ and ’horizontal torque.’ As well as investigating the single beam dielectric trap in the model of Ashkin, we additionally investigate the dual beam trap for all cases, which has the benefit of enhanced trapping forces.
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