Numerical and analytical models for calculating optical forces near auxiliary plasmonic substrates

A. Shalin, A. Ivinskaya, N. Kostina, M. Petrov, A. Bogdanov, S. Sukhov, P. Ginzburg
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Abstract

The optical force acting on a nanoparticle near a planar substrate is governed by incident light and excitation of surface and volume modes of the substrate. The realization of negative optical forces (“tractor beams”) via propagating plasmon-polaritones and volume modes will be shown and considered in detail on the basis of the described analytical and numerical models for certain types of anisotropic substrates. In addition, optical tweezers performance is investigated when the Gaussian beam is focused on the metal substrate with nanoparticle. When the beam is focused above the substrate optical force increases about an order of magnitude due to evanescent field of surface plasmon. Novel effect of repulsion from Gaussian beam (“anti-trapping”) is obtained when the beam waist is moved below the substrate which is confirmed by both the analytical approach and finite element simulation.The optical force acting on a nanoparticle near a planar substrate is governed by incident light and excitation of surface and volume modes of the substrate. The realization of negative optical forces (“tractor beams”) via propagating plasmon-polaritones and volume modes will be shown and considered in detail on the basis of the described analytical and numerical models for certain types of anisotropic substrates. In addition, optical tweezers performance is investigated when the Gaussian beam is focused on the metal substrate with nanoparticle. When the beam is focused above the substrate optical force increases about an order of magnitude due to evanescent field of surface plasmon. Novel effect of repulsion from Gaussian beam (“anti-trapping”) is obtained when the beam waist is moved below the substrate which is confirmed by both the analytical approach and finite element simulation.
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辅助等离子基板附近光力计算的数值和解析模型
作用在平面衬底附近的纳米颗粒上的光力是由入射光和衬底的表面和体积模式的激发决定的。通过传播等离子体偏振体和体积模式实现的负光学力(“牵引光束”)将在描述的某些类型的各向异性衬底的分析和数值模型的基础上进行详细的展示和考虑。此外,还研究了高斯光束聚焦在金属基板上时的光镊性能。当光束聚焦在衬底上方时,由于表面等离子体场的消失,光力增加了大约一个数量级。当光束束腰移动到基片以下时,得到了高斯光束的排斥效应(“反捕获”),这一结果得到了解析方法和有限元模拟的证实。作用在平面衬底附近的纳米颗粒上的光力是由入射光和衬底的表面和体积模式的激发决定的。通过传播等离子体偏振体和体积模式实现的负光学力(“牵引光束”)将在描述的某些类型的各向异性衬底的分析和数值模型的基础上进行详细的展示和考虑。此外,还研究了高斯光束聚焦在金属基板上时的光镊性能。当光束聚焦在衬底上方时,由于表面等离子体场的消失,光力增加了大约一个数量级。当光束束腰移动到基片以下时,得到了高斯光束的排斥效应(“反捕获”),这一结果得到了解析方法和有限元模拟的证实。
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