Optical radiation force and torque of light-sheets on a cylindrical particle near an infinite boundary

IF 2.1 3区 物理与天体物理 Q2 ACOUSTICS
Yuchen Zang
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Abstract

This work aims to extend the previous studies on the optical radiation force and torque for a cylindrical dielectric particle to the case near an infinite boundary. Without loss of generality, the two-dimensional cylindrical object is assumed to have an arbitrary shape and be immersed in any light-sheet beam of arbitrary wave front. The partial-wave series expansion method in cylindrical coordinates and the method of images are utilized to derive the exact expressions for the axial and transverse radiation force and torque functions, which are dependent on the beam shape coefficients of the incident light-sheet and the scattering coefficients characterized by the boundary conditions at the surface. Numerical computations are performed for a circular cylindrical particle illuminated by a two-dimensional plane wave and a two-dimensional Gauss beam, respectively, with particular emphases on the size parameter, the refractive index, the particle-boundary distance, the beam waist and the offset shifts. The radiation force will increase in magnitude and reverse its direction under selected conditions. When the absorptive cylindrical particle is shifted off-axially with respect to the beam axis, it will be rotated counterclockwise or clockwise by the radiation torque. The results obtained in this work have potential applications in non-contact particle manipulation and transportation using optical tweezers.

无限边界附近圆柱形粒子上的光辐射力和光束力矩
本研究旨在将以往对圆柱形介质粒子的光辐射力和力矩的研究扩展到无限边界附近的情况。在不失一般性的前提下,假设二维圆柱形物体具有任意形状,并浸没在任意波前的光片光束中。利用圆柱坐标的偏波数列展开法和图像法推导出轴向和横向辐射力和力矩函数的精确表达式,这些函数取决于入射光片的光束形状系数和表面边界条件所表征的散射系数。我们分别对受到二维平面波和二维高斯光束照射的圆柱形颗粒进行了数值计算,并特别强调了尺寸参数、折射率、颗粒边界距离、束腰和偏移量。在选定的条件下,辐射力会增大并反转方向。当吸收性圆柱形粒子相对于光束轴线偏移时,它将在辐射力矩的作用下逆时针或顺时针旋转。这项研究成果有望应用于使用光学镊子进行非接触式粒子操纵和运输。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Wave Motion
Wave Motion 物理-力学
CiteScore
4.10
自引率
8.30%
发文量
118
审稿时长
3 months
期刊介绍: Wave Motion is devoted to the cross fertilization of ideas, and to stimulating interaction between workers in various research areas in which wave propagation phenomena play a dominant role. The description and analysis of wave propagation phenomena provides a unifying thread connecting diverse areas of engineering and the physical sciences such as acoustics, optics, geophysics, seismology, electromagnetic theory, solid and fluid mechanics. The journal publishes papers on analytical, numerical and experimental methods. Papers that address fundamentally new topics in wave phenomena or develop wave propagation methods for solving direct and inverse problems are of interest to the journal.
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