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Dynamic adhesion behavior of micrometer-scale particles flowing over patchy surfaces with nanoscale electrostatic heterogeneity

机译:微米级颗粒在具有纳米级静电异质性的斑驳表面上流动的动态粘附行为

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The dynamic adhesion behavior of micrometer-scale silica particles is investigated numerically for a low Reynolds number shear flow over a planar collecting wall with randomly distributed electrostatic heterogeneity at the 10-nanometer scale. The hydrodynamic forces and torques on a particle are coupled to spatially varying colloidal interactions between the particle and wall. Contact and frictional forces are included in the force and torque balances to Capture Particle skipping, rolling, and arrest. These dynamic adhesion Signatures are consistent with experimental results and are reminiscent of motion signatures observed in cell adhesion Under flowing conditions, although for the synthetic system the particle-wall interactions are controlled by colloidal forces rather than physical bonds between cells and a functionalized surface. As the fraction of the surface (Theta) covered by the cationic patches is increased from zero, particle behavior sequentially transitions from no contact with the Surface to skipping, rolling, and arrest, with the threshold patch density for adhesion (Theta(crit)) always greater than zero and in quantitative agreement with experimental results. The ionic strength of the flowing solution determines the extent of the electrostatic interactions and can be used to tune selectively the dynamic adhesion behavior by modulating two competing effects. The extent of electrostatic interactions in the plane of the wall, or electrostatic zone of influence, governs the importance of spatial fluctuations in the cationic patch density and thus determines if flowing particles contact the wall. The distance these interactions extend into solution normal to the wall determines the strength of the particle-wall attraction, which governs the transition from skipping and rolling to arrest. The influence of Theta, particle size, Debye length, and shear rate is quantified through the Construction of adhesion regime diagrams, which delineate the regions in parameter space that give rise to different dynamic adhesion signatures and illustrate selective adhesion based on particle size or Curvature. The results Of this study are suggestive of novel ways to control particle-wall interactions using randomly distributed surface heterogeneity. (C) 2008 Elsevier Inc. All rights reserved.
机译:对于低雷诺数剪切流在平面收集壁上以低雷诺数剪切流进行了数值研究,动态粘附行为在10纳米尺度上具有随机分布的静电异质性。颗粒上的流体动力和扭矩与颗粒和壁之间的空间变化的胶体相互作用耦合。力和转矩平衡中包括接触力和摩擦力,以捕获颗粒的跳跃,滚动和停止。这些动态粘附签名与实验结果一致,并且让人联想到在流动条件下细胞粘附中观察到的运动签名,尽管对于合成系统,粒子-壁间相互作用是由胶体力控制的,而不是由细胞与功能化表面之间的物理键控制的。随着被阳离子斑块覆盖的表面(Theta)的比例从零增加,粒子行为会从不与表面接触逐渐过渡到跳过,滚动和停止,并具有阈值斑块密度(Theta(crit))总是大于零并且与实验结果在数量上一致。流动溶液的离子强度决定了静电相互作用的程度,可用于通过调节两种竞争效应来选择性地调节动态粘附行为。壁平面中静电相互作用的程度或静电影响区域决定了阳离子贴剂密度的空间波动的重要性,从而确定了流动的颗粒是否接触壁。这些相互作用延伸到垂直于壁的溶液中的距离决定了粒子-壁吸引的强度,该强度决定了从跳跃和滚动到停止的过渡。 Theta,粒度,德拜长度和剪切速率的影响通过构建附着力图来量化,该图描绘了参数空间中引起不同动态附着力特征的区域,并说明了基于粒度或曲率的选择性附着力。这项研究的结果提示了使用随机分布的表面异质性控制颗粒-壁相互作用的新方法。 (C)2008 Elsevier Inc.保留所有权利。

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