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Evanescent wave optical trapping and transport of micro- and nanoparticles on tapered optical fibers

机译:渐逝波光学捕获和在锥形光纤上传输微米和纳米颗粒

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摘要

We investigate the manipulation of microscopic and nanoscopic particles using the evanescent optical field surrounding an optical fiber that is tapered to a micron-scale diameter, and propose that this scheme could be used to discriminate between, and thereby sort, metallic nanoparticles. First we show experimentally the concept of the transport of micron-sized spheres along a tapered fiber and measure the particle velocity. Having demonstrated the principle we then consider theoretically the application to the optical trapping and guiding of metallic nanoparticles, where the presence of a plasmon resonance is used to enhance optical forces. We show that the dynamics of the nanoparticles trapped by the evanescent field can be controlled by the state of polarization of the fiber mode, and by using more than one wavelength differently detuned from the nanoparticle plasmon resonance. Such a scheme could potentially be used for selectively trapping and transporting nano- or microscopic material from a polydisperse suspension.
机译:我们研究了使用逐渐变细的光学场围绕逐渐变细的微米级直径的光纤的微观和纳米粒子的操纵,并提出该方案可用于区分金属纳米粒子,从而对其进行分类。首先,我们通过实验显示微米尺寸的球沿着锥形纤维的传输概念,并测量粒子速度。在证明了该原理之后,我们将在理论上考虑将其应用于金属纳米粒子的光学捕获和引导,其中使用等离子体激元共振来增强光学力。我们表明,van逝场捕获的纳米粒子的动力学可以通过纤维模式的偏振状态以及通过使用与纳米粒子等离子体共振不同解谐的一个以上波长来控制。这样的方案可以潜在地用于从多分散悬浮液中选择性地捕获和运输纳米或微观材料。

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