论文标题

化学反应性聚合物溶液流的理论:平衡和剪切诱导的相分离

A theory for the flow of chemically-responsive polymer solutions: equilibrium and shear-induced phase separation

论文作者

De Corato, Marco, Arroyo, Marino

论文摘要

化学响应的聚合物是大分子,通过改变其构象来应对溶液化学成分的局部变化,其中包括聚电解质,蛋白质和DNA在内的显着示例。聚合物构象的变化可能会响应于pH的变化,离子强度或与聚合物相互作用的通用溶质的浓度。这些化学刺激会导致聚合物柔韧性的急剧变化,甚至触发从线圈到球聚合物构象的过渡。在许多情况下,化学刺激的空间分布可能是高度不均匀的,这可能导致聚合物构象的空间变化和混合物的流变特性。在本文中,我们开发了一种理论,用于溶质和化学反应性聚合物的混合物的流动。该方法对于聚合物和溶质的通用流和不均匀分布有效。为了建模与溶质相互作用引入的聚合物构象变化,我们将聚合物视为线性弹性哑铃,其弹簧刚度取决于溶质浓度。我们使用Onsager的变分形式主义来得出管理变量演变的方程,该方程揭示了哑铃分布与溶质的分布之间的新型耦合。最后,我们使用线性稳定性分析表明,管理方程式预测平衡相分离和明显的剪切诱导的相分离,从而可以自发地点溶质和哑铃的均匀分布。在先前的实验中,使用刺激反应性聚合物也观察到了类似的相变,并且可能在生活系统中起重要作用。

Chemically-responsive polymers are macromolecules that respond to local variations of the chemical composition of the solution by changing their conformation, with notable examples including polyelectrolytes, proteins and DNA. The polymer conformation changes can occur in response to changes to the pH, the ionic strength or to the concentration of a generic solute that interacts with the polymer. These chemical stimuli can lead to drastic variations of the polymer flexibility and even trigger a transition from a coil to a globule polymer conformation. In many situations the spatial distribution of the chemical stimuli can be highly inhomogeneous, which can lead to large spatial variations of polymer conformation and of the rheological properties of the mixture. In this paper, we develop a theory for the flow of a mixture of a solute and chemically-responsive polymers. The approach is valid for generic flows and inhomogeneous distributions of polymers and solutes. To model the polymer conformation changes introduced by the interactions with the solute, we consider the polymers as linear elastic dumbbells whose spring stiffness depends on the solute concentration. We use the Onsager's variational formalism to derive the equations governing the evolution of the variables, which unveils novel couplings between the distribution of dumbbells and that of the solute. Finally, we use a linear stability analysis to show that the governing equations predict an equilibrium phase separation and a distinct shear-induced phase separation whereby a homogeneous distribution of solute and dumbbells spontaneously demix. Similar phase transitions have been observed in previous experiments using stimuli-responsive polymers and may play an important role in living systems.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源