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Synthesis and characterization of functionalized methacrylates for coatings and biomedical applications.

机译:用于涂料和生物医学应用的功能化甲基丙烯酸酯的合成与表征。

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The research presented in this dissertation involves the design of polymers for biomaterials and for coatings applications. The development of non-wettable, hard UV-curing, or reactive coatings is discussed. The biomaterials section involves the syntheses of linear and star-like polymers of the functionalized monomer poly(propylene glycol) monomethacrylate (PPGM) via atom transfer radical polymerization (ATRP) (Chapter II). Its copolymerization with a perfluoroalkyl ethyl methacrylate monomer (1H,1H,2H,2H-heptadecafluorodecyl methacrylate) and the syntheses of linear and star-like amphiphilic copolymers containing the fluorinated monomer and poly(ethyleneglycol) methyl ether methacrylate (MPEGMA) are discussed in Chapter III. The four-arm amphiphilic block copolymer obtained showed unique associative properties leading to micellization in selective solvents.; Chapter IV includes research involving the design of films with low surface energy by incorporating fluorine into the polymer. The synthesis, characterization and polymerization of a perfluoroalkylether-substituted methacrylic acid (C8F7) are discussed, and the properties of coatings obtained after its photopolymerization on different substrates are evaluated to confirm formation of low-surface energy polymeric coatings.; Subsequently, hard coatings based on methyl (alpha-hydroxymethyl)acrylate (MHMA) were prepared via photopolymerization using UV-light. Firstly, mechanistic investigations into the photopolymerization behavior of (alpha-hydroxymethyl)acrylates (RHMA's) are reported (Chapter V). RHMA derivatives were photopolymerized with various multifunctional acrylates and methacrylates and the effect of crosslinker type and degree of functionality on photopolymerization rates and conversions was investigated. Then, in Chapter VI the synthesis of a series of new crosslinkers is described and their photopolymerization kinetics was investigated in bulk. The effect of these novel crosslinkers on the photopolymerization kinetics and coatings properties of MHMA systems is then shown in Chapter VII. This chapter also includes the effect of the presence of synthetic clay in these systems and the preparation of nanocomposite-based films.; The final chapter of this dissertation involves the design of reactive coatings for biomedical applications. The syntheses and characterization of novel functionalized methacrylates containing succinimide ester groups susceptible to derivatization with amine-containing species were accomplished. Photopolymerization of these monomers led to formation of hydrogels and derivatization of the hydrogel surfaces with the tripeptide RGD (arginine-glycine-aspartic acid) was successfully achieved.
机译:本文的研究涉及生物材料和涂料应用中聚合物的设计。讨论了不可润湿的,硬的紫外线固化或反应性涂料的开发。生物材料部分涉及通过原子转移自由基聚合(ATRP)合成功能化单体聚丙二醇单甲基丙烯酸酯(PPGM)的线性和星形聚合物(第二章)。本章讨论了其与甲基丙烯酸全氟烷基乙基酯单体(甲基丙烯酸1H,1H,2H,2H-十七氟癸基癸酯)的共聚反应,以及包含氟化单体和聚乙二醇甲基丙烯酸甲酯的线性和星形两亲共聚物的合成。三,所获得的四臂两亲嵌段共聚物显示出独特的缔合性质,导致在选择性溶剂中的胶束化。第四章包括通过将氟掺入聚合物中来设计具有低表面能的薄膜的研究。讨论了全氟烷基醚取代的甲基丙烯酸(C8F7)的合成,表征和聚合反应,并对在不同基材上光聚合后获得的涂层的性能进行了评估,以确认形成了低表面能聚合物涂层。随后,通过使用UV光的光聚合制备基于(α-羟甲基)丙烯酸甲酯(MHMA)的硬涂层。首先,报道了对(α-羟甲基)丙烯酸酯(RHMA)的光聚合行为的机理研究(第五章)。 RHMA衍生物与各种多官能丙烯酸酯和甲基丙烯酸酯进行光聚合,并研究了交联剂类型和官能度对光聚合速率和转化率的影响。然后,在第六章中描述了一系列新的交联剂的合成,并对其大量的光聚合动力学进行了研究。这些新的交联剂对MHMA体系的光聚合动力学和涂层性能的影响将在第七章中介绍。本章还包括在这些系统中存在合成粘土的影响以及纳米复合材料基薄膜的制备。本论文的最后一章涉及生物医学应用中反应性涂层的设计。完成了新型的功能化的甲基化丙烯酸丁酯基团的官能化的甲基丙烯酸酯的合成和表征,该基团易于被含胺物种衍生化。这些单体的光致聚合导致水凝胶的形成,并成功实现了三肽RGD(精氨酸-甘氨酸-天冬氨酸)对水凝胶表面的衍生。

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