论文标题

通过跟踪光学捕获的单纳米颗粒来探测表面活性剂双层相互作用

Probing surfactant bilayer interactions by tracking optically trapped single nanoparticles

论文作者

Kim, Jeonghyeon, Martin, Olivier J. F.

论文摘要

单粒子跟踪和光学镊子是用于以微观规模研究不同过程的强大技术。显微镜可观察的粒子的随机行为包含有关其与周围分子相互作用的信息,并且光学镊子可以通过将粒子限制为感兴趣的区域的能力进一步促进这一观察结果。尽管这些技术在生物学中发现了最初的应用,但它们也可以通过实时揭示纳米级形态和分子级相互作用来实时揭示胶体和界面现象的新启示,这些形态和分子级相互作用在传统的集合分析中被掩盖了。在这里,我们证明了单粒子跟踪和光学镊子在研究固液界面上分子相互作用的应用。具体而言,我们通过追踪其与这些分子上光学捕获的金纳米颗粒的相互作用来研究表面活性剂在水玻璃界面上的行为。我们发现了粒子运动的基本机制,可以通过界面的表面活性剂单体之间的疏水相互作用,干扰和重排来解释。通过对个体轨迹的统计分析和与理论预测的比较,进一步支持了这种解释。我们的发现为该特定系统中的表面活性剂动力学提供了新的见解,但也说明了在研究纳米级物理学和表面和接口化学方面的单粒子跟踪和光学操纵的希望。

Single-particle tracking and optical tweezers are powerful techniques for studying diverse processes at the microscopic scale. The stochastic behavior of a microscopically observable particle contains information about its interaction with surrounding molecules, and an optical tweezer can further facilitate this observation with its ability to constrain the particle to an area of interest. Although these techniques found their initial applications in biology, they can also shed new light on colloid and interface phenomena by unveiling nanoscale morphologies and molecular-level interactions in real time, which have been obscured in traditional ensemble analysis. Here we demonstrate the application of single-particle tracking and optical tweezers for studying molecular interactions at solid-liquid interfaces. Specifically, we investigate the behavior of surfactants at the water-glass interface by tracing their interactions with gold nanoparticles that are optically trapped on these molecules. We discover the underlying mechanisms governing the particle motion, which can be explained by hydrophobic interactions, disruptions, and rearrangements among surfactant monomers at the interfaces. Such interpretations are further supported by statistical analysis of an individual trajectory and comparison to theoretical predictions. Our findings provide new insights into the surfactant dynamics in this specific system but also illustrate the promise of single-particle tracking and optical manipulation in studying nanoscale physics and chemistry of surfaces and interfaces.

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