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Effects of biomolecules on the electrokinetics of colloidal nanoparticles in liquid suspension

机译:生物分子对液体悬浮液中胶体纳米粒子电动力学的影响

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Electric fields can induce various types of motion in liquid suspensions of colloidal nanoparticles. These electrokinetic phenomena depend on the parameters of the electric field (frequency, amplitude, 3D topology), the particles (size, shape, composition) and the suspending liquid (polarizability, ionic strength, pH). In particular, the dielectrophoretic force on submicron colloidal particles is dependent on the properties of the electric double layer (the "ion cloud") around these particles. This dependence provides a mechanism for detecting and quantifying interactions between biomolecules and these nanoparticles, which can be combined with optical and spectroscopic measurements. Here, we report on functionalized plasmonic nanoparticles that are tracked inside microfluidic systems by dark-field video-microscopy. A high-gradient AC electric field is set up using transparent micro-electrodes. Electrohydrodynamic motion of the entire fluid and dielectrophoretic trapping of individual particles can be analyzed quantitatively by numerical methods. By switching the electric field synchronously with the video acquisition, the effect of biomolecules on the electrokinetic trapping can be quantified. The electromicrofluidic devices allow also for rapid measurement of diffusion coefficients.
机译:电场可以在胶体纳米颗粒的液体悬浮液中诱导各种类型的运动。这些电动现象取决于电场(频率,幅度,3D拓扑)的参数,颗粒(尺寸,形状,组成)和悬浮液(极化性,离子强度,pH)。特别地,亚微米胶体颗粒上的介电泳力取决于这些颗粒周围的电双层(“离子云”)的性质。该依赖性提供了用于检测和定量生物分子与这些纳米颗粒之间的相互作用的机制,其可以与光学和光谱测量组合。在此,我们通过暗场视频显微镜检查在微流体系统内跟踪的官能化等离子体纳米颗粒。使用透明微电极建立高梯度交流电场。通过数值方法可以定量分析整个颗粒的整个流体和介电泳俘获的电液动力学运动。通过与视频采集同步切换电场,可以量化生物分子对电动俘获的影响。电磁器流体装置还允许快速测量扩散系数。

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