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Development of a state-of-the-art atomic force microscope for improved force spectroscopy.

机译:开发用于改进力光谱的最先进的原子力显微镜。

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摘要

This research describes the development of a state-of-the-art atomic force microscope (AFM) for improved force spectroscopy. Although the AFM has been used extensively in this field of research, the performance of the instrument has been limited by inefficient operation techniques, incorrect experimental assumptions, and inadequate controller design. This research focuses on overcoming these deficiencies by providing precise control over the instrument for specialized research in a manner that is conducive to the natural science researcher.;To facilitate this research, a custom, multi-axis AFM system was constructed. The instrument was designed primarily for AFM-based force spectroscopy and as a result a substantial amount of research focused on the development of a wide variety of approach/retraction methods for the instrument. Defining research in this area included the development of methods to minimize potentially damaging compressive forces, form polymer bridges at different tip-sample gap widths, produce clean, deconvoluted force-extension curves, and limit single molecule force spectroscopy pulling geometry errors. In an effort to increase the efficiency of the instrument, the programs developed during this research were fully automated, allowing autonomous operation of the instrument for long periods of time. To compliment the data collection programs, both manual and automated analysis programs with force volume imaging capabilities were also developed.;By studying the AFM from a dynamic systems, measurements, and controls approach, the resulting controllers were tailored to meet the process requirements of the intended applications. In doing so, the sensitivity of the instrument was improved for applications of interest. By incorporating control over the environment, contact force, loading rate, and pulling angle, the research has increased the accuracy of the AFM such that molecules and receptor-ligand binding events can be investigated with greater detail. Furthermore, the incorporation of a graphical user interface and automated data collection and analysis tools has made the AFM a more user-friendly, efficient instrument for the natural science researcher.
机译:这项研究描述了用于改进的力谱学的最先进的原子力显微镜(AFM)的发展。尽管原子力显微镜已在该研究领域中得到广泛使用,但该仪器的性能受到效率低下的操作技术,不正确的实验假设以及控制器设计不充分的限制。这项研究的重点是通过以对自然科学研究者有利的方式提供对专业研究仪器的精确控制来克服这些缺陷。为了促进这项研究,构建了定制的多轴AFM系统。该仪器主要设计用于基于原子力显微镜的力谱学,因此大量研究集中在为该仪器开发各种接近/收回方法上。在该领域的定义性研究包括开发方法,以最大程度地减少潜在的破坏性压缩力,在不同的尖端样品间隙宽度处形成聚合物桥,生成清晰的,去卷积的力-延伸曲线,并限制单分子力光谱法拉扯几何误差。为了提高仪器的效率,在这项研究中开发的程序是完全自动化的,可以长时间自动操作仪器。为了补充数据收集程序,还开发了具有力体积成像功能的手动和自动分析程序。通过从动态系统,测量和控制方法研究原子力显微镜,定制了最终的控制器,以满足控制系统的过程要求。预期的应用程序。这样做,可以提高仪器的灵敏度以适应感兴趣的应用。通过结合对环境,接触力,加载速率和牵拉角的控制,这项研究提高了AFM的准确性,从而可以更详细地研究分子和受体-配体的结合事件。此外,图形用户界面以及自动数据收集和分析工具的结合使AFM成为自然科学研究者更加用户友好,高效的工具。

著录项

  • 作者

    Rivera, Monica.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 296 p.
  • 总页数 296
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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