Hpone Myint Kyaw, Brown Jonathan R, Shim Anne R, Wyslouzil Barbara E, Hall Lisa M
Department of Chemistry, Berea College , Berea, Kentucky 40404, United States.
Department of Physics, Berea College , Berea, Kentucky 40404, United States.
J Phys Chem B. 2016 Nov 10;120(44):11582-11594. doi: 10.1021/acs.jpcb.6b07324. Epub 2016 Oct 27.
The formation of block copolymer micelles with and without hydrophobic nanoparticles is simulated using dissipative particle dynamics. We use the model developed by Spaeth et al. [ Spaeth , J. R. , Kevrekidis , I. G. , and Panagiotopoulos , A. Z. J. Chem. Phys. 2011 , 134 ( (16) ) 164902 ], and drive micelle formation by adjusting the interaction parameters linearly over time to represent a rapid change from organic solvent to water. For different concentrations of added nanoparticles, we determine characteristic times for micelle formation and coagulation, and characterize micelles with respect to size, polydispersity, and nanoparticle loading. Four block copolymers with different numbers of hydrophobic and hydrophilic polymer beads, are examined. We find that increasing the number of hydrophobic beads on the polymer decreases the micelle formation time and lowers polydispersity in the final micelle distribution. Adding more nanoparticles to the simulation has a negligible effect on micelle formation and coagulation times, and monotonically increases the polydispersity of the micelles for a given polymer system. The presence of relatively stable free polymer in one system decreases the amount of polymer encapsulating the nanoparticles, and results in an increase in polydispersity and the number of nanoparticles per micelle for that system, especially at high nanoparticle concentration. Longer polymers lead to micelles with a more uniform nanoparticle loading.
使用耗散粒子动力学模拟了含和不含疏水性纳米颗粒的嵌段共聚物胶束的形成。我们采用了Spaeth等人[ Spaeth, J. R., Kevrekidis, I. G., and Panagiotopoulos, A. Z. J. Chem. Phys. 2011, 134 ((16)) 164902 ]开发的模型,并通过随时间线性调整相互作用参数来驱动胶束形成,以表示从有机溶剂到水的快速转变。对于不同添加浓度的纳米颗粒,我们确定了胶束形成和凝聚的特征时间,并从尺寸、多分散性和纳米颗粒负载量方面对胶束进行了表征。研究了四种具有不同数量疏水和亲水聚合物珠子的嵌段共聚物。我们发现,增加聚合物上疏水珠子的数量会缩短胶束形成时间,并降低最终胶束分布的多分散性。在模拟中添加更多纳米颗粒对胶束形成和凝聚时间的影响可忽略不计,并且对于给定的聚合物体系,会单调增加胶束的多分散性。在一个体系中相对稳定的游离聚合物的存在会减少包裹纳米颗粒的聚合物数量,并导致该体系的多分散性增加以及每个胶束中纳米颗粒数量增加,尤其是在高纳米颗粒浓度下。更长的聚合物会导致胶束具有更均匀的纳米颗粒负载量。