Bagchi Debarshee
International Centre for Theoretical Sciences, Tata Institute of Fundamental Research, Bengaluru, India.
Soft Matter. 2022 Aug 3;18(30):5676-5686. doi: 10.1039/d2sm00448h.
Understanding the behavior of charged complex fluids is crucial for a plethora of important industrial, technological, and medical applications. Here, using coarse-grained molecular dynamics simulations, we investigate the properties of a polyelectrolyte solution with explicit counterions and implicit solvent that is driven by a steady electric field. By properly tuning the interplay between interparticle electrostatics and the applied electric field, we uncover two non-equilibrium continuous phase transitions as a function of the driving field. The first transition occurs from a homogeneous mixed phase to a macroscopic charge-segregated phase in which the polyelectrolyte solution self-organizes to form two lanes of like-charges, parallel to the applied field. We show that the fundamental underlying factor responsible for the emergence of this charge segregation in the presence of an electric field is the excluded volume interactions of the drifting polyelectrolyte chains. As the driving field is increased further, a re-entrant transition is observed from a charge-segregated phase to a homogeneous phase. The re-entrance is signaled by a decrease in the mobility of the monomers and counterions as the electric field is increased. Furthermore, with multivalent counterions, a counterintuitive regime of negative differential mobility is observed in which the charges move progressively more slowly as the driving field is increased. We show that all these features can be consistently explained using an intuitive trapping mechanism that operates between the oppositely moving charges, and present numerical evidence to support our claims. Parameter dependencies and phase diagrams are studied to better understand charge segregation in such driven polyelectrolyte solutions.
了解带电复合流体的行为对于众多重要的工业、技术和医学应用至关重要。在此,我们使用粗粒度分子动力学模拟,研究了一种具有明确抗衡离子和隐式溶剂的聚电解质溶液在稳定电场驱动下的性质。通过适当调整粒子间静电作用与外加电场之间的相互作用,我们发现了两种非平衡连续相变,它们是驱动场的函数。第一次相变发生在从均匀混合相到宏观电荷分离相的过程中,在该相中聚电解质溶液自组织形成两条同电荷的通道,平行于外加电场。我们表明,在电场存在下导致这种电荷分离出现的根本因素是漂移的聚电解质链的排除体积相互作用。随着驱动场进一步增加,观察到从电荷分离相到均匀相的再入相变。再入相变的信号是随着电场增加,单体和抗衡离子的迁移率降低。此外,对于多价抗衡离子,观察到一种违反直觉的负微分迁移率状态,即随着驱动场增加,电荷移动得越来越慢。我们表明,所有这些特征都可以使用在相反移动电荷之间起作用的直观捕获机制得到一致解释,并提供数值证据来支持我们的观点。研究了参数依赖性和相图,以更好地理解这种驱动聚电解质溶液中的电荷分离。