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Advanced dynamics of optically trapped nanowire waveguides

机译:光学陷阱纳米线波导的高级动力学

摘要

In this thesis I describe a number of studies to examine some high order effects of advanced trapping dynamics beyond the standard single gradient force optical trap. Our interests lay primarily on low symmetry particles, specifically on high refractive index, high aspect ratio nanowires. We examine higher order dynamics due to coupling between rotational and translational degrees of freedom when a single high aspect ratio nanowire is trapped. We also study the coupling of the trapping laser into the waveguiding modes of the trapped nanowire, as well as the coupling interactions between multiple trapped nanowires.On single optically trapped nanowires, we show calculations beyond the standard power spectral analysis to demonstrate the emergence of resonance behaviour in overdamped systems due to the coupling between rotational and translational degrees of freedom. We also experimentally demonstrate the effects of such coupling which shows up in the form of resonance peaks in the power spectrum when single nanowires are trapped in optical tweezers.Next we examine the coupling of light into the waveguide modes of high refractive index nanowires by calculating the field profiles, dispersion and group velocity. We then investigate the optical coupling between multiple high refractive index nanowires in close proximity. In particular, we calculate the field profiles, dispersion and optical force of coupled nanowire waveguides with the Coupled Mode Theory and Perturbation Theory. The optical forces between coupled waveguides is also calculated and compared to results obtained from Maxwell’s Stress Tensor calculations.In the final results chapter, we explore various experimental approaches to experimentally measure the coupled nanowire system that was calculated in the previous chapter. We propose time-shared optical tweezers with interferometric particle tracking as a means of physically measuring the coupling between nanowires and investigate the feasibility of this measurement technique for our system.In summary, we conducted theoretical analysis and experiments that aid in the further understanding of the advanced dynamics of high refractive index, high aspect ratio nanowires within the optical trapping domain.
机译:在这篇论文中,我描述了许多研究,以检验高级诱捕动力学在标准单梯度力光学陷阱之外的一些高阶效应。我们的兴趣主要在于低对称性的粒子,特别是高折射率,高纵横比的纳米线。当捕获单个高纵横比纳米线时,由于旋转和平移自由度之间的耦合,我们研究了更高阶的动力学。我们还研究了俘获激光到被俘获纳米线的波导模式中的耦合以及多条被俘获纳米线之间的耦合相互作用。由于旋转和平移自由度之间的耦合,在过阻尼的系统中的行为。我们还通过实验证明了这种耦合的效果,当单根纳米线被捕获在光镊中时,这种耦合在功率谱中以共振峰的形式显示出来。场分布,色散和群速度。然后,我们研究紧密相邻的多条高折射率纳米线之间的光学耦合。特别是,我们使用耦合模式理论和微扰理论计算了耦合纳米线波导的场分布,色散和光学力。还计算了耦合波导之间的光学力,并将其与从麦克斯韦应力张量计算获得的结果进行比较。在最终结果一章中,我们探索了各种实验方法,以实验方式测量上一章中计算出的耦合纳米线系统。我们提出了使用干涉式颗粒跟踪的分时光镊作为物理测量纳米线之间耦合的一种手段,并研究了这种测量技术在我们系统中的可行性。总而言之,我们进行了理论分析和实验,有助于进一步了解陷波域内高折射率,高长宽比纳米线的先进动力学。

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