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作为流体动力混合器的Janus微泳器效率低下。

Low efficiency of Janus microswimmers as hydrodynamic mixers.

作者信息

Bailey Maximilian R, Fedosov Dmitry A, Paratore Federico, Grillo Fabio, Gompper Gerhard, Isa Lucio

机构信息

Laboratory for Soft Materials and Interfaces, Department of Materials, <a href="https://ror.org/05a28rw58">ETH Zürich</a>, Vladimir-Prelog-Weg 5, 8093 Zürich, Switzerland.

Theoretical Physics of Living Matter, Institute of Biological Information Processing and Institute for Advanced Simulation, <a href="https://ror.org/02nv7yv05">Forschungszentrum Jülich</a>, 52425 Jülich, Germany.

出版信息

Phys Rev E. 2024 Oct;110(4-1):044601. doi: 10.1103/PhysRevE.110.044601.

Abstract

The generation of fluid flows by autophoretic microswimmers has been proposed as a mechanism to enhance mass transport and mixing at the micro- and nanoscale. Here, we experimentally investigate the ability of model 2D active baths of photocatalytic silica-titania Janus microspheres to enhance the diffusivity of tracer particles at different microswimmer densities below the onset of collective behavior. Inspired by the similarities between our experimental findings and previous results for biological microorganisms, we then model our Janus microswimmers using a general squirmer framework, specifically treating them as neutral squirmers. The numerical simulations faithfully capture our observations, offer an insight into the microscopic mechanism underpinning tracer transport, and allow us to expand the parameter space beyond our experimental system. We find strong evidence that near-field interactions dominate enhancements in tracer diffusivity in active Janus baths, leading to the identification of an operating window for enhanced tracer transport by chemical microswimmers based on scaling arguments. Based on this argumentation, we suggest that for many chemically active colloidal systems, hydrodynamics alone is likely to be insufficient to induce appreciable mixing of passive components with large diffusion coefficients.

摘要

自泳微游动器产生流体流动已被提出作为一种在微米和纳米尺度上增强质量传输和混合的机制。在此,我们通过实验研究了光催化二氧化硅 - 二氧化钛Janus微球的二维活性浴模型在低于集体行为起始点的不同微游动器密度下增强示踪粒子扩散率的能力。受我们的实验结果与先前生物微生物研究结果相似性的启发,我们随后使用通用的蠕动器框架对Janus微游动器进行建模,具体将它们视为中性蠕动器。数值模拟忠实地再现了我们的观察结果,深入了解了示踪剂传输的微观机制,并使我们能够扩展超出实验系统的参数空间。我们发现有力证据表明,近场相互作用主导了活性Janus浴中示踪剂扩散率的增强,基于标度论证确定了化学微游动器增强示踪剂传输的操作窗口。基于此论证,我们认为对于许多化学活性胶体系统,仅靠流体动力学可能不足以使具有大扩散系数的被动成分实现明显混合。

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