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Theory of competitive counterion adsorption on flexible polyelectrolytes: Divalent salts

机译:竞争性抗衡离子在柔性聚电解质上的吸附理论:二价盐

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摘要

The counterion distribution around an isolated flexible polyelectrolyte in the presence of a divalent salt is evaluated using the adsorption model [] that considers the Bjerrum length, salt concentration, and local dielectric heterogeneity as physical variables in the system. Self-consistent calculations of effective charge and size of the polymer show that divalent counterions replace condensed monovalent counterions in competitive adsorption. The theory further predicts that at modest physical conditions for a flexible polyelectrolytes such as sodium polystyrene sulfonate in aqueous solutions polymer charge is compensated and reversed with increasing divalent salt. Consequently, the polyelectrolyte shrinks and reswells. Lower temperatures and higher degrees of dielectric heterogeneity between chain backbone and solvent enhance condensation of all species of ions. Complete diagrams of states for the effective charge calculated as functions of the Coulomb strength and salt concentration suggest that (a) overcharging requires a minimum Coulomb strength and (b) progressively higher presence of salt recharges the polymer due to either electrostatic screening (for low Coulomb strengths) or coion condensation (for high Coulomb strengths). Consideration of ion-bridging by divalent counterions leads to a first-order collapse of polyelectrolytes in modest presence of divalent salts and at higher Coulomb strengths. The authors’ theoretical predictions are in agreement with the generic results from experiments and simulations.
机译:使用吸附模型[],将二价盐存在下隔离的柔性聚电解质周围的抗衡离子分布进行评估,该模型将Bjerrum长度,盐浓度和局部介电异质性视为系统中的物理变量。聚合物有效电荷和尺寸的自洽计算表明,二价抗衡离子在竞争性吸附中取代了缩合的单价抗衡离子。该理论进一步预测,在水溶液的柔性聚电解质(如聚苯乙烯磺酸钠)的适度物理条件下,聚合物电荷会随着二价盐的增加而补偿并逆转。因此,聚电解质收缩并再膨胀。链主链与溶剂之间的较低温度和较高程度的介电异质性会增强所有离子种类的凝聚。根据库仑强度和盐浓度的函数计算的有效电荷状态的完整图表明,(a)过度充电需要最小库仑强度,并且(b)由于静电屏蔽(对于低库仑,盐的存在逐渐增加)会使聚合物充电强度或Coion缩合(高库仑强度)。考虑到由二价抗衡离子引起的离子桥联会导致在适度存在二价盐和更高库仑强度的情况下聚电解质的一级分解。作者的理论预测与实验和模拟的一般结果一致。

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