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Development and applications of magneto-optical scanning probe microscopy.

机译:磁光扫描探针显微镜的发展与应用。

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摘要

Rapid progress in all areas of science on the nanometer size scale has promoted increasing interest in techniques of ultrahigh-resolution microscopy. The purpose of this research has been to develop novel scanning probe microscopes and to apply this new instrumentation to biomedical applications of interest. The majority of this dissertation is concerned with the development of a three dimensional (3-D) magnetic and optical force microscope (3DFM) for measurement of 3-D viscoelastic fields in biological systems. An optical detection system measures the 3-D displacement of the probe (a magnetic bead, which has a diameter of 4.4μm or smaller) with a spatial resolution of a few nanometers and a temporal resolution of 40μs. Fast dynamic optical calibration techniques were developed for calibrating each individual tracked particle using a quadrant photodiode placed in the back-focal plane of a 0.7 NA microscope objective. An active feedback control system keeps the bead inside the center of the tracking laser by moving the sample cell.; Thermal position fluctuations (Brownian motion) of the tracked particle provide spatial and viscoelastic information about the local environment. A comprehensive quantitative analysis of the magnetic forces and optical tracking were performed both in theory and through simulation. These results were compared to the experimental results obtained from the actual instrument. A comprehensive noise analysis was performed on the system to delineate the lower limits on the measured displacements from the tracking algorithm. The magnetic forces generated by the 3-D magnetic manipulator were calibrated using samples of known viscosities (sucrose solutions). These applied magnetic forces can be used for the purpose of both force microscopy and manipulation. Some preliminary results are presented on the measured viscosity of mucus from normal human lung epithelium.; The use of non-invasive magnetic and optical fields should facilitate the study of intercellular organelles and give better insight into the structure of the cortical and internal cytoskeleton. In addition, viscoelastic measurements are of great practical value to quantify the effects of drugs, mutations, and diseases on the mechanical structure of biological cells.
机译:在纳米尺寸范围内的所有科学领域中的快速进步,引起了人们对超高分辨率显微镜技术的日益增长的兴趣。这项研究的目的是开发新型扫描探针显微镜,并将这种新仪器应用于感兴趣的生物医学应用。本论文的大部分内容涉及用于测量生物系统中3-D粘弹性场的三维(3-D)磁力和光学力显微镜(3DFM)的开发。光学检测系统以几纳米的空间分辨率和40μs的时间分辨率测量探针(直径为4.4μm或更小的磁珠)的3-D位移。开发了快速动态光学校准技术,用于使用置于0.7 NA显微镜物镜的后焦平面上的象限光电二极管来校准每个单独的跟踪粒子。主动反馈控制系统通过移动样品池将磁珠保持在跟踪激光器的中心。被跟踪粒子的热位置波动(布朗运动)提供有关局部环境的空间和粘弹性信息。在理论上和通过仿真对磁力和光学跟踪进行了全面的定量分析。将这些结果与从实际仪器获得的实验结果进行比较。在系统上进行了全面的噪声分析,以根据跟踪算法描绘出所测位移的下限。使用已知粘度的样品(蔗糖溶液)校准由3-D磁操纵器产生的磁力。这些施加的磁力可用于力显微镜和操纵的目的。一些关于正常人肺上皮粘液黏度的测量结果已初步显示。非侵入性磁场和光场的使用应促进细胞间细胞器的研究,并更好地了解皮层和内部细胞骨架的结构。另外,粘弹性测量对于量化药物,突变和疾病对生物细胞机械结构的影响具有重要的实用价值。

著录项

  • 作者

    Cummings, Jeremy Ronald.;

  • 作者单位

    The University of North Carolina at Chapel Hill.;

  • 授予单位 The University of North Carolina at Chapel Hill.;
  • 学科 Engineering Biomedical.; Biophysics General.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 274 p.
  • 总页数 274
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;生物物理学;
  • 关键词

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