Chervanyov A I
Institute of Theoretical Physics, Westfälische Wilhelms-Universität Muenster, 48149 Muenster, Germany.
J Chem Phys. 2016 Dec 28;145(24):244905. doi: 10.1063/1.4972875.
By making use of the polymer reference interaction site model, we analytically study the effect of attractive interactions between polymers on the effective forces acting between colloids immersed in a polymer system. The performed theoretical analysis has no restrictions with respect to the polymer density and relative sizes of the colloids and polymers. The polymer mediated (PM) potential acting between colloids is shown to significantly depend on the strength and range of the polymer-polymer interactions. In the nano-particle limit, where the colloid radius is much smaller than the polymer gyration radius, the presence of attractive polymer-polymer interactions causes only quantitative changes to the PM potential. In the opposite limit of relatively large colloids, the polymer-polymer interactions revert the sign of the total effective force acting between colloids so that this force becomes attractive at sufficiently large polymer densities. With the objective to study an intricate interplay between the attractive PM forces and steric repulsion in different polymer density regimes, we calculate the second virial coefficient B of the total effective potential acting between colloids. The dependence of B on the polymer density is discussed in detail, revealing several novel features of the PM interactions caused by the presence of attractive polymer-polymer interactions.
通过利用聚合物参考相互作用位点模型,我们分析研究了聚合物之间的吸引相互作用对浸没在聚合物体系中的胶体之间有效作用力的影响。所进行的理论分析对聚合物密度以及胶体和聚合物的相对尺寸没有限制。结果表明,胶体之间的聚合物介导(PM)势显著取决于聚合物 - 聚合物相互作用的强度和范围。在纳米粒子极限情况下,即胶体半径远小于聚合物回转半径时,聚合物 - 聚合物吸引相互作用的存在仅对PM势产生定量变化。在相对较大胶体的相反极限情况下,聚合物 - 聚合物相互作用会使胶体之间总有效力的符号反转,从而在足够高的聚合物密度下该力变为吸引力。为了研究在不同聚合物密度区域中吸引性PM力与空间排斥之间的复杂相互作用,我们计算了胶体之间总有效势的第二维里系数B。详细讨论了B对聚合物密度的依赖性,揭示了由聚合物 - 聚合物吸引相互作用的存在所导致的PM相互作用的几个新特征。