Singh Sunil P, Muthukumar M
Department of Polymer Science and Engineering, University of Massachusetts Amherst, Amherst, Massachusetts 01003, USA.
J Chem Phys. 2014 Sep 21;141(11):114901. doi: 10.1063/1.4895397.
We have simulated the transport properties of a uniformly charged flexible polymer chain and its counterions confined inside cylindrical nanopores under an external electric field. The hydrodynamic interaction is treated by describing the solvent molecules explicitly with the multiparticle collision dynamics method. The chain consisting of charged monomers and the counterions interact electrostatically with themselves and with the external electric field. We find rich behavior of the counterions around the polymer under confinement in the presence of the external electric field. The mobility of the counterions is heterogeneous depending on their location relative to the polymer. The adsorption isotherm of the counterions on the polymer depends nonlinearly on the electric field. As a result, the effective charge of the polymer exhibits a sigmoidal dependence on the electric field. This in turn leads to a nascent nonlinearity in the chain stretching and electrophoretic mobility of the polymer in terms of their dependence on the electric field. The product of the electric field and the effective polymer charge is found to be the key variable to unify our simulation data for various polymer lengths. Chain extension and the electrophoretic mobility show sigmoidal dependence on the electric field, with crossovers from the linear response regime to the nonlinear regime and then to the saturation regime. The mobility of adsorbed counterions is nonmonotonic with the electric field. For weaker and moderate fields, the adsorbed counterions move with the polymer and at higher fields they move opposite to the polymer's direction. We find that the effective charge and the mobility of the polymer decrease with a decrease in the pore radius.
我们模拟了均匀带电的柔性聚合物链及其抗衡离子在外部电场作用下被限制在圆柱形纳米孔内的输运性质。通过多粒子碰撞动力学方法明确描述溶剂分子来处理流体动力学相互作用。由带电单体组成的链和抗衡离子自身以及与外部电场发生静电相互作用。我们发现在存在外部电场的情况下,受限聚合物周围的抗衡离子表现出丰富的行为。抗衡离子的迁移率因其相对于聚合物的位置而异。抗衡离子在聚合物上的吸附等温线非线性地依赖于电场。结果,聚合物的有效电荷对电场呈现出S形依赖关系。这进而导致聚合物的链拉伸和电泳迁移率在依赖于电场方面出现新的非线性。发现电场与聚合物有效电荷的乘积是统一我们针对各种聚合物长度的模拟数据的关键变量。链的伸展和电泳迁移率对电场呈现出S形依赖关系,从线性响应区域过渡到非线性区域,然后再到饱和区域。吸附的抗衡离子的迁移率随电场呈非单调变化。对于较弱和中等强度的电场,吸附的抗衡离子与聚合物一起移动,而在较高电场下它们与聚合物的方向相反。我们发现聚合物的有效电荷和迁移率随着孔半径的减小而降低。