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光学纳米纤维倏逝场中的选择性粒子捕获与光学束缚

Selective particle trapping and optical binding in the evanescent field of an optical nanofiber.

作者信息

Frawley M C, Gusachenko I, Truong V G, Sergides M, Chormaic S Nic

出版信息

Opt Express. 2014 Jun 30;22(13):16322-34. doi: 10.1364/OE.22.016322.

Abstract

The evanescent field of an optical nanofiber presents a versatile interface for the manipulation of micron-scale particles in dispersion. Here, we present a detailed study of the optical binding interactions of a pair of 3.13 μm SiO(2) spheres in the nanofiber evanescent field. Preferred equilibrium positions for the spheres as a function of nanofiber diameter and sphere size are discussed. We demonstrated optical propulsion and self-arrangement of chains of one to seven 3.13 μm SiO(2) particles; this effect is associated with optical binding via simulated trends of multiple scattering effects. Incorporating an optical nanofiber into an optical tweezers setup facilitated the individual and collective introduction of selected particles to the nanofiber evanescent field for experiments. Computational simulations provide insight into the dynamics behind the observed behavior.

摘要

光学纳米纤维的倏逝场为操控分散状态下的微米级粒子提供了一个多功能界面。在此,我们详细研究了一对3.13μm二氧化硅球体在纳米纤维倏逝场中的光学束缚相互作用。讨论了球体作为纳米纤维直径和球体尺寸函数的优选平衡位置。我们展示了一到七个3.13μm二氧化硅粒子链的光学推进和自排列;这种效应与通过多次散射效应的模拟趋势进行的光学束缚相关。将光学纳米纤维纳入光镊装置便于将选定粒子单独和集体引入纳米纤维倏逝场进行实验。计算模拟为观察到的行为背后的动力学提供了深入了解。

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