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Orientation of optically trapped nonspherical birefringent particles

机译:光学捕获的非球面双折射粒子的取向

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摘要

While the alignment and rotation of microparticles in optical traps have received increased attention recently, one of the earliest examples has been almost totally neglected the alignment of particles relative to the beam axis, as opposed to about the beam axis. However, since the alignment torques determine how particles align in a trap, they are directly relevant to practical applications. Lysozyme crystals are an ideal model system to study factors determining the orientation of nonspherical birefringent particles in a trap. Both their size and their aspect ratio can be controlled by the growth parameters, and their regular shape makes computational modeling feasible. We show that both external shape and internal birefringence anisotropy contribute to the alignment torque. Three-dimensionally trapped elongated objects either align with their long axis parallel or perpendicular to the beam axis depending on their size. The shape-dependent torque can exceed the torque due to birefringence, and can align negative uniaxial particles with their optic axis parallel to the electric field, allowing an application of optical torque about the beam axis.
机译:尽管近来光学陷阱中微粒的排列和旋转受到越来越多的关注,但最早的例子之一几乎完全忽略了粒子相对于束轴(而不是围绕束轴)的排列。但是,由于对齐扭矩决定了颗粒在捕集阱中的对齐方式,因此它们与实际应用直接相关。溶菌酶晶体是研究决定阱中非球形双折射粒子取向的因素的理想模型系统。它们的大小和纵横比都可以通过增长参数来控制,并且它们的规则形状使计算建模变得可行。我们表明,外部形状和内部双折射各向异性都有助于对准转矩。三维捕获的细长对象的大小取决于其长轴与光束轴平行或垂直的方向。与形状有关的扭矩可能会超过双折射导致的扭矩,并使负单轴粒子的光轴与电场平行排列,从而允许围绕光束轴施加光转矩。

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