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Viscoelastic Particle Train Formation in Microfluidic Flows Using a Xanthan Gum Aqueous Solution

机译:使用黄原胶水溶液,微流体流动中的粘弹性粒子列车形成

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摘要

Viscoelastic polymer solutions have been widely employed as suspending liquids for a myriad of microfluidic applications including particle and cell focusing, sorting, and encapsulation. It has been recently shown that viscoelastic solutions can drive the formation of equally spaced particles called “particle trains” as a result of the viscoelasticity-mediated hydrodynamic interactions between adjacent particles. Despite their potential impact on applications such as droplet encapsulation and flow cytometry, only limited experimental studies on viscoelastic ordering are currently available. In this work, we demonstrate that a viscoelastic shear-thinning aqueous xanthan gum solution drives the self-assembly of particle trains on the centerline of a serpentine microfluidic device with a nearly circular cross section. After focusing, the flowing particles change their mutual distance and organize in aligned structures characterized by a preferential spacing, quantified in terms of distributions of the interparticle distance. We observe the occurrence of multi-particle strings, mainly doublets and triplets, that interrupt the continuity of the particle train. To account for the fluctuations in the number of flowing particles in the experimental window, we introduce the concept of local particle concentration, observing that an increase of the local particle concentration leads to an increase of doublets and triplets. We also demonstrate that using only a single tube to connect the sample to the microfluidic device results in a drastic reduction of doublets/triplets, thus leading to a more uniform particle train. Our findings establish the foundation for optimized applications such as deterministic droplet encapsulation in viscoelastic liquids and optimized flow cytometry.
机译:粘弹性聚合物溶液已被广泛用作悬浮液,用于各种微流控应用,包括颗粒和细胞聚焦、分选和封装。最近的研究表明,由于粘弹性介导的相邻粒子之间的流体动力相互作用,粘弹性溶液可以驱动称为“粒子列”的等间距粒子的形成。尽管它们对液滴封装和流式细胞术等应用有潜在影响,但目前只有有限的粘弹性排序实验研究可用。在这项工作中,我们证明了粘弹性剪切稀释水性黄原胶溶液在具有近似圆形横截面的蛇形微流控装置的中心线上驱动粒子序列的自组装。聚焦后,流动的粒子改变其相互距离,并以优先间距为特征的排列结构组织起来,根据粒子间距离的分布进行量化。我们观察到多粒子串的出现,主要是双粒子和三粒子串,它们中断了粒子序列的连续性。为了解释实验窗口中流动粒子数量的波动,我们引入了局部粒子浓度的概念,观察到局部粒子浓度的增加会导致二重态和三重态的增加。我们还证明,仅使用一根管将样品连接到微流控设备,可大幅减少双/三重态,从而产生更均匀的粒子序列。我们的发现为优化应用奠定了基础,例如在粘弹性液体中确定的液滴包封和优化的流式细胞术。

著录项

  • 来源
    《Analytical chemistry》 |2021年第13期|共10页
  • 作者单位

    Systems and Process Engineering Centre College of Engineering Swansea University;

    Systems and Process Engineering Centre College of Engineering Swansea University;

    Dipartimento di Ingegneria Chimica dei Materiali e della Produzione Industriale Universitá degli Studi di Napoli Federico II;

    Systems and Process Engineering Centre College of Engineering Swansea University;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
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