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分子结构对固体表面吸附的影响:梳状聚合物。

Influence of the molecular architecture on the adsorption onto solid surfaces: comb-like polymers.

机构信息

Departamento de Química Física I, Facultad de Ciencias Químicas, Universidad Complutense de Madrid, Ciudad Universitaria s/n, 28040-Madrid, Spain.

出版信息

Phys Chem Chem Phys. 2011 Sep 28;13(36):16416-23. doi: 10.1039/c1cp21967g. Epub 2011 Aug 12.

Abstract

The processes of adsorption of grafted copolymers onto negatively charged surfaces were studied using a dissipative quartz crystal microbalance (D-QCM) and ellipsometry. The control parameters in the study of the adsorption are the existence or absence on the molecular architecture of grafted polyethyleneglycol (PEG) chains with different lengths and the chemical nature of the main chain, poly(allylamine) (PAH) or poly(L-lysine) (PLL). It was found out that the adsorption kinetics of the polymers showed a complex behavior. The total adsorbed amount depends on the architecture of the polymer chains (length of the PEG chains), on the polymer concentration and on the chemical nature of the main chain. The comparison of the thicknesses of the adsorbed layers obtained from D-QCM and from ellipsometry allowed calculation of the water content of the layers that is intimately related to the grafting length. The analysis of D-QCM results also provides information about the shear modulus of the layers, whose values have been found to be typical of a rubber-like polymer system. It is shown that the adsorption of polymers with a charged backbone is not driven exclusively by the electrostatic interactions, but the entropic contributions as a result of the trapping of water in the layer structure are of fundamental importance.

摘要

使用耗散石英晶体微天平 (D-QCM) 和椭圆光度法研究了接枝共聚物在带负电荷表面上的吸附过程。在吸附研究中,控制参数是接枝聚乙二醇 (PEG) 链的分子结构中是否存在不同长度的 PEG 链以及主链的化学性质,即聚(烯丙胺) (PAH) 或聚(L-赖氨酸) (PLL)。结果发现,聚合物的吸附动力学表现出复杂的行为。总吸附量取决于聚合物链的结构(PEG 链的长度)、聚合物浓度和主链的化学性质。从 D-QCM 和椭圆光度法获得的吸附层厚度的比较允许计算与接枝长度密切相关的层中的含水量。对 D-QCM 结果的分析还提供了有关层剪切模量的信息,其值被发现是典型的橡胶状聚合物体系。结果表明,带电荷主链的聚合物的吸附不仅仅是由静电相互作用驱动的,而是由于水在层结构中的捕获而产生的熵贡献具有重要意义。

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