首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Graft polymerization from a silica surface initiated by adsorbed peroxide macroinitiators. I. Adsorption and structure of the adsorbed layer of peroxide macroinitiators on a silica surface
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Graft polymerization from a silica surface initiated by adsorbed peroxide macroinitiators. I. Adsorption and structure of the adsorbed layer of peroxide macroinitiators on a silica surface

机译:由吸附的过氧化物大分子引发剂引发的二氧化硅表面接枝聚合。一,过氧化物大分子引发剂在二氧化硅表面的吸附结构

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The adsorption features of two peroxide macroinitiators (PMIs) with various functionalities from their semidilute solutions on the silica surface were thoroughly investigated in the present work. These investigations include the study of the adsorption kinetics of PMI in diverse solvents and a detailed examination of the adsorbed layer structure with the aid of ellipsometry, scanning force microscopy (SFM), and contact angle measurements. Rearrangements of PMI macromolecules at the solid surface are supposed to be the main reason for the appearance of extremes on the kinetic curves and, besides, have a more pronounceable effect on adsorption rate than their diffusion rate to the surface even at the initial stage of the process. Both islandlike and densely packed structures of absorbed layers were revealed by combining contact angle measurements and SFM. Surprisingly, even in the case when saturation of the adsorbed layer is reached, PMI does not completely occupy the substrate surface which is at least particularly reachable for the wetting liquids. PMIs adsorbed at the solid surface are intended for the formation of tethered polymer "brushes" via the initiation of "grafting from" polymerization.
机译:在本工作中,对两种具有各种功能的过氧化物大分子引发剂(PMI)从其半稀释溶液在二氧化硅表面的吸附特性进行了深入研究。这些研究包括对PMI在各种溶剂中的吸附动力学的研究,以及借助于椭圆偏光法,扫描力显微镜(SFM)和接触角测量对吸附层结构的详细检查。 PMI大分子在固体表面的重排被认为是动力学曲线出现极端的主要原因,此外,即使在吸附初期,对PMI的吸附速率也比其向表面的扩散速率更显着。处理。通过结合接触角测量和SFM揭示了吸收层的岛状和密集堆积结构。出人意料的是,即使在达到吸附层的饱和的情况下,PMI也没有完全占据至少对于润湿液而言特别可达到的基底表面。吸附在固体表面的PMI旨在通过引发“接枝”聚合反应来形成束缚聚合物“刷子”。

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