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Optical and magnetic manipulation of hybrid micro and nanoparticle sensors.

机译:混合微米和纳米颗粒传感器的光学和磁性操作。

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摘要

Microparticles and nanoparticles have been used in a wide variety of applications ranging from biomedical to optical and electronic technologies. The microscopic and mesoscopic size scale of single particles makes them ideal tools for probing the local environments of biological cells, sensing the viscous properties of fluids and surfaces on the microscale, and interacting with photonic and magnetic fields. But the effectiveness of these particle systems is limited by the ability to manipulate and control them in predictable ways.; In this work, two methods of microparticle and nanoparticle manipulation are investigated, namely optical tweezers (OT) and magnetic rotation. OT provide a mechanically non-invasive means of grasping microparticles and nanoparticles, utilizing focused laser light. Moreover, particles driven by magnetic rotation in viscous media exhibit nonlinear dynamical motion and are a subclass of systems known as nonuniform oscillators. Both the individual and combined synergistic use of these control schemes is studied, in particular, on hybrid particles systems comprised of several materials, including both dielectric microspheres and metallic or magnetic colloids.; Classical electromagnetic theory was developed to describe the wavelength dependence of OT forces acting on a trapped, resonantly absorptive particle. Enhancements in the trapping strength could be obtained via near-resonance tuning of the laser wavelength. Experimental observation of this phenomenon on our hybrid particles was inhibited by increased destabilizing forces at the micron scale and the emergence of heating effects at high laser intensities often used in OT.; Using reduced laser intensities in conjunction with magnetic rotation, hybrid particles could be two-dimensionally trapped and rolled at a substrate surface. Changes in the nonlinear dynamical motion of the particles were measured to distinguish particle roughness and surface friction.; The response of rigid dimers of hybrid particles to optical and magnetic manipulation was studied. Observed changes in the dynamical motion with increased optical perturbation strength, using both numerical modeling and experiment, were investigated in terms of scattering forces, magnetization and heat generation from absorptive interactions.; Finally, the escape into the third-dimension of a magnetic dimer of hybrid particles undergoing nonuniform rotation was studied experimentally and compared to both theory and numerical simulation.
机译:微粒和纳米颗粒已用于从生物医学到光学和电子技术的广泛应用。单个粒子的微观和介观尺寸尺度使它们成为探测生物细胞局部环境,检测微观尺度上的流体和表面的粘性特性以及与光子和磁场相互作用的理想工具。但是这些粒子系统的有效性受到以可预测方式操纵和控制它们的能力的限制。在这项工作中,研究了微粒和纳米粒子处理的两种方法,即光镊(OT)和磁旋转。 OT提供了一种利用聚焦激光抓取微粒和纳米粒子的机械无创手段。此外,在粘性介质中由磁旋转驱动的粒子表现出非线性动力学运动,并且是称为非均匀振荡器的系统的子类。特别是在由几种材料组成的混合粒子系统上研究了这些控制方案的单独使用和组合协同使用,这些材料包括介电微球和金属或磁性胶体。开发了经典的电磁理论来描述作用在被捕获的共振吸收粒子上的OT力的波长依赖性。可以通过激光波长的近共振调谐来提高捕获强度。在我们的杂化颗粒上对这种现象的实验观察被微米级的去稳定力增加以及在OT中经常使用的高激光强度下出现的热效应所抑制。使用降低的激光强度并结合磁旋转,可以将二维粒子捕获并在衬底表面滚动杂化粒子。测量颗粒的非线性动力学运动的变化以区分颗粒粗糙度和表面摩擦。研究了杂化粒子的刚性二聚体对光和磁操纵的响应。使用数值模型和实验,观察了随着光学摄动强度增加而引起的动态运动变化,从散射力,磁化和吸收相互作用产生的热量方面进行了研究。最后,通过实验研究了杂化粒子在不均匀旋转下向第二维逃逸的过程,并与理论和数值模拟进行了比较。

著录项

  • 作者

    Agayan, Rodney Ray.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Physics Electricity and Magnetism.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 211 p.
  • 总页数 211
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 电磁学、电动力学;光学;
  • 关键词

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