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Synthesis and characterisation of coating polyurethane cationomers containing fluorine built-in hard urethane segments

机译:含氟内置硬质氨基甲酸酯链段的涂料聚氨酯阳离子聚合物的合成与表征

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摘要

Polyurethane cationomers were synthesised in the reaction of 4,4’-methylenebis(phenyl isocyanate) with polyoxyethylene glycol (M = 2,000) or poly(tetrafluoroethyleneoxide-co-difluoromethylene oxide) α,ω-diisocyanate and N-methyl diethanolamine. Amine segments were built-in to the urethane-isocyanate prepolymer in the reaction with 1-bromobutane or formic acid, and then they were converted to alkylammonium cations. The obtained isocyanate prepolymers were then extended in the aqueous medium that yielded stable aqueous dispersions which were applied on the surfaces of test poly(tetrafluoroethylene) plates. After evaporation of water, the dispersions formed thin polymer coatings. 1H, 13C NMR and IR spectral methods were employed to confirm chemical structures of synthesised cationomers. Based on 1H NMR and IR spectra, the factors κ and α were calculated, which represented the polarity level of the obtained cationomers. The DSC, wide angle X-ray scattering and atom force microscopy methods were employed for the microstructural assessment of the obtained materials. Changes were discussed in the surface free energy and its components, as calculated independently according to the method suggested by van Oss–Good, in relation to chemical and physical structures of cationomers as well as morphology of coating surfaces obtained from those cationomers. Fluorine incorporated into cationomers (about 30%) contributed to lower surface free energy values, down to about 15 mJ/m2. That was caused by gradual weakening of long-range interactions within which the highest share is taken by dispersion interactions.
机译:在4,4'-亚甲基双(异氰酸苯基酯)与聚氧乙二醇(M = 2,000)或聚(四氟环氧乙烷-共-二氟环氧丙烷)α,ω-二异氰酸酯和N-甲基二乙醇胺的反应中合成聚氨酯阳离子聚合物。在与1-溴丁烷或甲酸的反应中,将胺链段内置于氨基甲酸酯-异氰酸酯预聚物中,然后将其转化为烷基铵阳离子。然后将获得的异氰酸酯预聚物在水性介质中扩展,得到稳定的水性分散体,将其分散在测试聚四氟乙烯板的表面上。水蒸发后,分散体形成薄的聚合物涂层。用 1 H, 13 C NMR和IR光谱法确定合成的阳离子聚合物的化学结构。基于 1 NMR和IR光谱,计算出因子κ和α,其代表所获得的阳离子聚合物的极性水平。用DSC,广角X射线散射和原子力显微镜法对所得材料进行微观结构评估。讨论了根据van Oss–Good建议的方法独立计算的表面自由能及其成分的变化,这些变化涉及阳离子聚合物的化学和物理结构以及由这些阳离子聚合物获得的涂层表面的形态。阳离子聚合物中掺入的氟(约30%)有助于降低表面自由能值,低至约15mJ / m 2 。这是由于远程相互作用逐渐减弱而引起的,其中最大的份额是分散相互作用。

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