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接枝结构对粘土-聚(NiPAAm)纳米杂化材料表面活性剂行为的影响。

Effect of grafting architecture on the surfactant-like behavior of clay-poly(NiPAAm) nanohybrids.

机构信息

Institute of Polymer Science and Engineering, National Taiwan University, Taipei 10617, Taiwan.

出版信息

J Colloid Interface Sci. 2012 Dec 1;387(1):106-14. doi: 10.1016/j.jcis.2012.07.084. Epub 2012 Aug 8.

Abstract

A new class of clay-polymer nanohybrids was synthesized by grafting poly(N-isopropylacrylamide) (PNiPAAm) on the edge of nanoscale silicate platelets (NSPs) through covalently bonded linkers to form various architectures. The inherent ionic character of NSPs and the organic moieties of isopropyl amide in PNiPAAms impart surface active properties to the nanohybrids. Surface tension and particle size measurements were used to determine the critical micelle concentrations (CMCs) of the nanohybrids. It was found that PNiPAAm brushes grafted onto NSPs with the single-headed linkers are loosely packed and can expand easily in water causing inter-hybrid interactions. In contrast, PNiPAAm brushes grafted onto NSPs with the double-headed linkers may alternatively exhibit intra-hybrid interactions and the hybrids tend to exist in a dispersed state. Consequently, the latter has a higher CMC than the former. In addition, the CMC can be tailored by adjusting the grafting density of the linkers on the NSP surfaces. The densely grafted nanohybrids exhibit close inter-hybrid contact resulting in a lower CMC than that for the sparsely grafted nanohybrids. Molecular simulations were also performed to study the effects of the polymer-grafted architecture and the density of the linkers on the micellar behavior of NSP-PNiPAAm hybrids. The simulation results were found to be in good agreement with the experimental observations. Thus, it is possible to control the surface active properties and aggregation of the clay-PNiPAAm hybrids by manipulating the organic grafting architectures of the silicate platelets.

摘要

通过共价键连接体将聚(N-异丙基丙烯酰胺)(PNiPAAm)接枝到纳米尺度硅酸盐片(NSP)的边缘,合成了一类新型的粘土-聚合物纳米杂化材料,形成了各种结构。NSP 的固有离子特性和 PNiPAAm 中的异丙基酰胺有机部分赋予纳米杂化物表面活性特性。通过表面张力和粒径测量来确定纳米杂化物的临界胶束浓度(CMC)。研究发现,带有单头连接体的 NSP 接枝的 PNiPAAm 刷是松散组装的,在水中容易展开,导致杂化体之间的相互作用。相比之下,带有双头连接体的 NSP 接枝的 PNiPAAm 刷可能会表现出内部分子间的相互作用,且杂化体倾向于处于分散状态。因此,后者的 CMC 高于前者。此外,还可以通过调整 NSP 表面连接体的接枝密度来调节 CMC。密集接枝的纳米杂化物表现出紧密的杂化体接触,导致 CMC 低于稀疏接枝的纳米杂化物。还进行了分子模拟,以研究聚合物接枝结构和连接体密度对 NSP-PNiPAAm 杂化物胶束行为的影响。模拟结果与实验观察结果吻合良好。因此,通过操纵硅酸盐片的有机接枝结构,可以控制粘土-PNiPAAm 杂化物的表面活性性质和聚集。

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