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高阶贝塞尔(涡旋)光束对单轴各向异性球体的光拉力

Optical pulling force on a uniaxial anisotropic sphere by a high-order Bessel (vortex) beam.

作者信息

Li Zheng Jun

出版信息

Appl Opt. 2024 Apr 1;63(10):A59-A69. doi: 10.1364/AO.502347.

DOI:10.1364/AO.502347
PMID:38568512
Abstract

Based on the generalized Lorenz-Mie theory (GLMT) and the scattering theory of uniaxial spheres, a theoretical approach is introduced to study the axial radiation force (AOF) exerted on a uniaxial anisotropic sphere illuminated by an on-axis high-order Bessel (vortex) beams (HOBVBs). Applying Maxwell's stress tensor, an analytical expression of the AOF on a uniaxial anisotropic sphere by the on-axis HOBVB is derived. The correctness of the theoretical and numerical results is verified by comparing the AOF on an isotropic sphere by a zero-order Bessel beam (ZOBB) with those results by a plane wave, Gaussian beam, and ZOBB. The focus of this study is to determine some conditions of the tractor beam, so as to realize the inverse motion of an anisotropic sphere through a Bessel beam. The range of optical pulling force (OPF) that can pull particles in reverse motion generated by zero-order and first-order Bessel beams is extended from isotropic spherical particles to anisotropic spherical particles. The effects of the sphere radius, conical angle, and especially electromagnetic anisotropy parameters on the OPF in water or a vacuum environment are discussed in detail. Moreover, the OPF exerted on the uniaxial anisotropic sphere illuminated by a HOBVB with =2, 3, and 4 is also exhibited. It indicates that the HOBVB with =2, 3 is also a good tractor beam for the uniaxial anisotropic sphere. The OPF generated by Bessel beams on uniaxial anisotropic spherical particles is not only affected by the conical angle and radius but is also significantly influenced by anisotropic parameters and topological charges. These properties of the OPF are different from those on an isotropic sphere. The theory and results are hopeful to provide an effective theoretical basis for the study of optical micromanipulation of biological and anisotropic complex particles by optical tractor (vortex) beams.

摘要

基于广义洛伦兹-米氏理论(GLMT)和单轴球体的散射理论,引入了一种理论方法来研究轴向高阶贝塞尔(涡旋)光束(HOBVBs)照射下单轴各向异性球体上的轴向辐射力(AOF)。应用麦克斯韦应力张量,推导了轴向HOBVB作用于单轴各向异性球体上AOF的解析表达式。通过比较零阶贝塞尔光束(ZOBB)作用于各向同性球体上的AOF与平面波、高斯光束和ZOBB作用的结果,验证了理论和数值结果的正确性。本研究的重点是确定牵引光束的一些条件,以便通过贝塞尔光束实现各向异性球体的反向运动。由零阶和一阶贝塞尔光束产生的能使粒子反向运动的光拉力(OPF)范围从各向同性球形粒子扩展到各向异性球形粒子。详细讨论了球体半径、锥角,特别是电磁各向异性参数在水或真空环境中对OPF的影响。此外,还展示了 =2、3和4的HOBVB照射下单轴各向异性球体上的OPF。结果表明, =2、3的HOBVB也是单轴各向异性球体的良好牵引光束。贝塞尔光束在单轴各向异性球形粒子上产生的OPF不仅受锥角和半径的影响,还受各向异性参数和拓扑电荷的显著影响。OPF的这些特性与各向同性球体上的不同。该理论和结果有望为利用光学牵引(涡旋)光束对生物和各向异性复杂粒子进行光学微操纵的研究提供有效的理论基础。

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