Sulatha Muralidharan S, Natarajan Upendra
Molecular Modeling and Simulation Lab, Department of Chemical Engineering, Indian Institute of Technology Madras , Chennai 600036, India.
J Phys Chem B. 2015 Sep 24;119(38):12526-39. doi: 10.1021/acs.jpcb.5b04680. Epub 2015 Sep 10.
We have investigated the interaction of dodecyltrimethylammonium chloride (DoTA) micelle with weak polyelectrolytes, poly(acrylic acid) and poly(methacrylic acid). Anionic as well as un-ionized forms of the polyelectrolytes were studied. Polyelectrolyte-surfactant complexes were formed within 5-11 ns of the simulation time and were found to be stable. Association is driven purely by electrostatic interactions for anionic chains whereas dispersion interactions also play a dominant role in the case of un-ionized chains. Surfactant headgroup nitrogen atoms are in close contact with the carboxylic oxygens of the polyelectrolyte chain at a distance of 0.35 nm. In the complexes, the polyelectrolyte chains are adsorbed on to the hydrophilic micellar surface and do not penetrate into the hydrophobic core of the micelle. Polyacrylate chain shows higher affinity for complex formation with DoTA as compared to polymethacrylate chain. Anionic polyelectrolyte chains show higher interaction strength as compared to corresponding un-ionized chains. Anionic chains act as polymeric counterion in the complexes, resulting in the displacement of counterions (Na(+) and Cl(-)) into the bulk solution. Anionic chains show distinct shrinkage upon adsorption onto the micelle. Detailed information about the microscopic structure and binding characteristics of these complexes is in agreement with available experimental literature.
我们研究了十二烷基三甲基氯化铵(DoTA)胶束与弱聚电解质聚丙烯酸和聚甲基丙烯酸之间的相互作用。对聚电解质的阴离子形式以及未电离形式进行了研究。在模拟时间的5-11纳秒内形成了聚电解质-表面活性剂复合物,且发现其是稳定的。对于阴离子链,缔合纯粹由静电相互作用驱动,而在未电离链的情况下,色散相互作用也起主要作用。表面活性剂头基氮原子与聚电解质链的羧基氧原子紧密接触,距离为0.35纳米。在复合物中,聚电解质链吸附在亲水性胶束表面,不会渗透到胶束的疏水核心中。与聚甲基丙烯酸链相比,聚丙烯酸链与DoTA形成复合物的亲和力更高。与相应的未电离链相比,阴离子聚电解质链表现出更高的相互作用强度。阴离子链在复合物中充当聚合抗衡离子,导致抗衡离子(Na(+)和Cl(-))被置换到本体溶液中。阴离子链在吸附到胶束上时表现出明显的收缩。关于这些复合物微观结构和结合特性的详细信息与现有的实验文献一致。