论文标题
电场诱导的离子流体中的振荡:修改的泊松泊松模型的统一配方及其与相关函数分析的相关性
Electric-field-induced oscillations in ionic fluids: a unified formulation of modified Poisson-Nernst-Planck models and its relevance to correlation function analysis
论文作者
论文摘要
从理论上讲,我们将带电球的电场驱动的系统作为浓缩电场下的原始电源模型。首先,我们使用随机密度函数理论(DFT)提供了电场驱动原始模型的随机电荷和密度动力学的统一公式。随机DFT整合了平衡和动态DFT的各种框架,液态状态理论和现场理论方法,这使我们能够以统一的方式证明了先前针对Poisson-Nernst-Planck模型进行的各种修改。接下来,我们考虑使用静态电场的原始模型的固定密度密度和电荷 - 充电相关函数。我们专注于密度和电荷振荡的出现之间的电场诱导的同步,或者从单调到密度密度和电荷电荷相关性的振荡衰减的交叉。相关函数分析证明了垂直于外场的隔离带形成的条带状态的外观。我们还预测以下内容:(i)电场诱导的交叉发生在传统的柯克伍德交叉之前,没有应用电场,以及(ii)衰减长度在电场诱导的跨界时的离子浓度依赖性具有与对振动型长度相似的,与振动型长度相似。
We theoretically investigate an electric-field-driven system of charged spheres as a primitive model of concentrated electrolytes under an applied electric field. First, we provide a unified formulation for the stochastic charge and density dynamics of the electric-field-driven primitive model using the stochastic density functional theory (DFT). The stochastic DFT integrates various frameworks of the equilibrium and dynamic DFTs, the liquid state theory, and the field-theoretic approach, which allows us to justify in a unified manner various modifications previously made for the Poisson-Nernst-Planck model. Next, we consider stationary density-density and charge-charge correlation functions of the primitive model with a static electric field. We focus on an electric-field-induced synchronization between the emergence of density and charge oscillations, or the crossover from monotonic to oscillatory decay of density-density and charge-charge correlations. The correlation function analysis demonstrates the appearance of stripe states formed by segregation bands perpendicular to the external field. We also predict the following: (i) the electric-field-induced crossover occurs prior to the conventional Kirkwood crossover without an applied electric field, and (ii) the ion concentration dependence of the decay lengths at the electric-field-induced crossovers bears a similarity to the underscreening behavior found by simulation and theoretical studies on the oscillatory decay length in equilibrium.