论文标题
从均匀到活动分布的微管 - 运动蛋白活性流体中的自我混合
Self-mixing in microtubule-kinesin active fluid from nonuniform to uniform distribution of activity
论文作者
论文摘要
活性流体在微混合中具有应用,但对系统与空间变化活性的混合运动学的混合知之甚少。为了研究,使用紫外线激活的笼子ATP来激活微管 - 运动蛋白活性液的受控区域,并使用荧光示踪剂和分子染料观察到混合过程。在低péclet数字(扩散传输)下,主动无效界面以扩散方式朝着非活动区域发展,该方式通过简单模型与Michaelis-Menteren动力学结合的简单模型描述。在高péclet数字(对流传输)下,主动界面以类似超截止的方式进行,该界面是由活跃流体流体动力模型定性捕获的,与ATP传输结合。结果表明,主动流体混合涉及在主动应力分布与ATP的主动转运之间的复杂耦合,并减少了悬浮成分的混合时间,而初始成分分布的影响降低了。这项工作将为有源流体的应用提供信息,以促进微流体设备中的微混合。
Active fluids have applications in micromixing, but little is known about the mixing kinematics of systems with spatiotemporally-varying activity. To investigate, UV-activated caged ATP was used to activate controlled regions of microtubule-kinesin active fluid and the mixing process was observed with fluorescent tracers and molecular dyes. At low Péclet numbers (diffusive transport), the active-inactive interface progressed toward the inactive area in a diffusion-like manner that was described by a simple model combining diffusion with Michaelis-Menten kinetics. At high Péclet numbers (convective transport), the active-inactive interface progressed in a superdiffusion-like manner that was qualitatively captured by an active-fluid hydrodynamic model coupled to ATP transport. Results showed that active fluid mixing involves complex coupling between distribution of active stress and active transport of ATP and reduces mixing time for suspended components with decreased impact of initial component distribution. This work will inform application of active fluids to promote micromixing in microfluidic devices.