首页> 外文期刊>Bulletin of the American Physical Society >APS -APS March Meeting 2017 - Event - Single polymer dynamics in semi-dilute unentangled and entangled solutions: from molecular conformation to normal stress
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APS -APS March Meeting 2017 - Event - Single polymer dynamics in semi-dilute unentangled and entangled solutions: from molecular conformation to normal stress

机译:APS -APS 2017年3月会议-活动-半稀释无缠结和缠结溶液中的单一聚合物动力学:从分子构象到法向应力

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Semi-dilute polymer solutions are encountered in a wide array of applications such as advanced 3D printing technologies. Semi-dilute solutions are characterized by large fluctuations in concentration, such that hydrodynamic interactions, excluded volume interactions, and transient chain entanglements may be important, which greatly complicates analytical modeling and theoretical treatment. Despite recent progress, we still lack a complete molecular-level understanding of polymer dynamics in these systems. In this talk, I will discuss three recent projects in my group to study semi-dilute solutions that focus on single molecule studies of linear and ring polymers and a new method to measure normal stresses in microfluidic devices based on the Stokes trap. In the first effort, we use single polymer techniques to investigate the dynamics of semi-dilute unentangled and semi-dilute entangled DNA solutions in extensional flow, including polymer relaxation from high stretch, transient stretching dynamics in step-strain experiments, and steady-state stretching in flow. In the semi-dilute unentangled regime, our results show a power-law scaling of the longest polymer relaxation time that is consistent with scaling arguments based on the double cross-over regime. Upon increasing concentration, we observe a transition region in dynamics to the entangled regime. We also studied the transient and steady-state stretching dynamics in extensional flow using the Stokes trap, and our results show a decrease in transient polymer stretch and a milder coil-to-stretch transition for semi-dilute polymer solutions compared to dilute solutions, which is interpreted in the context of a critical Weissenberg number $Wi$ at the coil-to-stretch transition. Interestingly, we observe a unique set of polymer conformations in semi-dilute unentangled solutions that are highly suggestive of transient topological entanglements in solutions that are nominally unentangled at equilibrium. Taken together, these results suggest that the transient stretching pathways in semi-dilute solution extensional flows are qualitatively different than for both dilute solutions and for semi-dilute solutions in shear flow. In a second effort, we studied the dynamics of ring polymers in background solutions of semi-dilute linear polymers. Interestingly, we observe strikingly large fluctuations in steady-state polymer extension for ring polymers in flow, which occurs due to the interplay between polymer topology and concentration leading to chain `threading' in flow. In a third effort, we developed a new microfluidic method to measure normal stress and extensional viscosity that can be loosely described as passive yet non-linear microrheology. In particular, we incorporated 3-D particle imaging velocimetry (PIV) with the Stokes trap to study extensional flow-induced particle migration in semi-dilute polymer solutions. Experimental results are analyzed using the framework of a second-order-fluid model, which allows for measurement of normal stress and extensional viscosity in semi-dilute polymer solutions, all of which is a first-of-its-kind demonstration. Microfluidic measurements of extensional viscosity are directly compared to the dripping-onto-substrate or DOS method, and good agreement is generally observed. Overall, our work aims to provide a molecular-level understanding of the role of polymer topology and concentration on bulk rheological properties by using single polymer techniques.
机译:半稀释聚合物解决方案在诸如高级3D打印技术之类的广泛应用中遇到。半稀释溶液的特征在于浓度的波动较大,因此流体动力学相互作用,排除的体积相互作用和瞬态链缠结可能很重要,这使分析模型和理论处理大大复杂化。尽管取得了最新进展,但我们仍然缺乏对这些系统中聚合物动力学的完整分子水平的了解。在本次演讲中,我将讨论小组中的三个最新项目,以研究半稀释溶液,该溶液专注于线性和环状聚合物的单分子研究,以及一种基于Stokes阱的测量微流体装置中法向应力的新方法。首先,我们使用单一聚合物技术研究拉伸流中半稀释的未缠结和半稀释的缠结DNA溶液的动力学,包括高拉伸引起的聚合物松弛,阶跃应变实验中的瞬时拉伸动力学以及稳态在流动中伸展。在半稀释的无纠缠态中,我们的结果表明最长的聚合物弛豫时间的幂律定标与基于双交叉方案的定标参数一致。随着浓度的增加,我们在动力学中观察到一个纠缠态的过渡区域。我们还使用Stokes捕集阱研究了拉伸流动中的瞬态和稳态拉伸动力学,我们的结果表明,与稀释溶液相比,半稀释聚合物溶液的瞬态聚合物拉伸降低且线圈-拉伸转变温和。在线圈到拉伸过渡过程中的临界魏森伯格数$ Wi $的背景下解释了。有趣的是,我们在半稀无缠结溶液中观察到一组独特的聚合物构象,这些聚合物构象高度暗示了在名义上处于无缠结状态的溶液中的瞬态拓扑缠结。两者合计,这些结果表明,半稀释溶液延伸流中的瞬时拉伸路径与剪切流中的稀溶液和半稀释溶液在质量上都不同。在第二个尝试中,我们研究了半稀释线性聚合物在背景溶液中的环状聚合物动力学。有趣的是,我们观察到环状聚合物在流动中的稳态聚合物延伸具有惊人的大波动,这是由于聚合物拓扑结构和浓度之间的相互作用导致流动中的链“穿线”而发生的。在第三次努力中,我们开发了一种新的微流体方法来测量法向应力和拉伸粘度,可以将其粗略地描述为被动但非线性的微流变学。特别是,我们将3-D颗粒成像测速仪(PIV)与Stokes捕集阱结合使用,以研究在半稀聚合物溶液中拉伸流动引起的颗粒迁移。使用二阶流体模型框架分析实验结果,该模型可以测量半稀释聚合物溶液中的法向应力和拉伸粘度,所有这些都是首创。将延伸粘度的微流体测量结果直接与滴到基质上或DOS方法进行比较,通常观察到良好的一致性。总体而言,我们的工作旨在通过使用单一聚合物技术,从分子水平上了解聚合物拓扑结构和浓度对整体流变性能的作用。

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