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Probing colloidal interactions with digital video microscopy and blinking optical tweezers.

机译:用数字视频显微镜和闪烁的镊子探测胶体相互作用。

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摘要

Important material properties of colloidal suspensions such as their stability, rheology and microstructure are largely determined by the long-range forces acting between the suspension's microscopic constituent particles. The miniscule scale of these forces has long proved a barrier to a detailed understanding of colloidal suspensions. We surmount this barrier by combining recent advances in digital image processing and optical trapping to yield new techniques for measuring the forces acting on and between isolated colloidal spheres. We measure the electrostatic and hydrodynamic interactions between pairs of colloidal spheres using digital video microscopy and blinking optical tweezers. We also measure the interaction of a single colloidal sphere with a glass wall using total internal reflection microscopy. The interactions between isolated pairs of colloidal spheres agree quantitatively with the predictions of DLVO theory, charge renormalization theory and low-Reynolds number hydrodynamics. The interactions between pairs of spheres confined between glass walls, however, show an anomalous long-range attractive tail. We demonstrate that these attractions are due to the presence of the walls, and not intrinsic to the pair interaction of the spheres themselves, as suggested in the literature. Furthermore, we discuss the merits of possible mechanisms to account for these attractive interactions.
机译:胶体悬浮液的重要材料性能,如稳定性,流变性和微观结构,很大程度上取决于悬浮液的微观组成颗粒之间的远距离作用力。长期以来,这些力的微小规模已成为阻碍对胶体悬浮液进行详细了解的障碍。我们通过结合数字图像处理和光学陷波的最新进展来克服这一障碍,以产生新技术来测量作用在孤立的胶体球上及其之间的力。我们使用数字视频显微镜和闪烁的光镊来测量成对的胶体球之间的静电和流体动力相互作用。我们还使用全内反射显微镜测量了单个胶体球与玻璃墙的相互作用。孤立的胶体球对之间的相互作用在定量上与DLVO理论,电荷重正化理论和低雷诺数流体动力学的预测一致。然而,局限于玻璃墙之间的成对球体之间的相互作用显示出异常的远距离吸引力尾巴。我们证明了这些吸引力是由于壁的存在,而不是球体本身的配对相互作用所固有的,正如文献中所暗示的那样。此外,我们讨论了解决这些有吸引力的相互作用的可能机制的优点。

著录项

  • 作者

    Crocker, John Charles.;

  • 作者单位

    The University of Chicago.;

  • 授予单位 The University of Chicago.;
  • 学科 Physics Condensed Matter.;Physics Molecular.
  • 学位 Ph.D.
  • 年度 1996
  • 页码 158 p.
  • 总页数 158
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 宗教;
  • 关键词

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