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Hyperbranched polymers with high degrees of branching and low dispersity values : pushing the limits of thiol–yne chemistry

机译:高支化度和低分散度值的超支化聚合物:突破了硫醇-炔化学的极限

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摘要

We propose a versatile approach to the production of hyperbranched polymers with high degrees of branching and low dispersity values (Đ), involving slow monomer addition of a thiol/yne monomer to multifunctional core molecules in the presence of photoinitiator and under UV irradiation. The small thiol/yne monomer was synthesized via 1-ethyl-3-(3-(dimethylamino)propyl)carbodiimide hydrochloride (EDC·HCl) esterification, and batch polymerizations were performed at varying concentrations. The batch thiol–yne polymerizations had fast reaction kinetics and large dispersity values that increased with increasing concentration. Introduction of monomer by slow addition to a multifunctional alkyne core (tri(prop-2-yn-1-yl) 1,3,5-benzenetricarboxylate) or alkene core (triallyl 1,3,5-benzenetricarboxylate) was found to lower dispersity at monomer concentrations of 0.5–2.0 M. Degrees of branching were determined by 1H NMR spectroscopy to be greater than 0.8 in most cases. Increasing the fraction of core molecule was found to decrease dispersity to values as low as 1.26 and 1.38 for the alkene core and alkyne core, respectively, for monomer concentrations of 0.5 M with 10 mol % core molecule. Molecular weights of the hyperbranched structures were also determined by light scattering size exclusion chromatography (SEC) detection, and intrinsic viscosities were determined by viscometry SEC detection. The Kuhn–Mark–Houwink–Sakurada α parameter decreased from 0.35 for the batch process to values as low as 0.21 (10 mol % alkene core) or 0.16 (10 mol % alkyne core), indicating that the thiol–yne structures became more globular and dense with the slow monomer addition strategy. This simple and versatile approach is a promising new development for the design of hyperbranched polymers of well-controlled molecular weight and molecular weight distributions, with very high degrees of branching.
机译:我们提出了一种通用的方法来生产具有高支化度和低分散度值(versatile)的超支化聚合物,包括在光引发剂的存在下和在紫外线照射下,将硫醇/炔单体缓慢添加到多功能核分子中。通过1-乙基-3-(3-(二甲基氨基)丙基)碳二亚胺盐酸盐(EDC·HCl)酯化反应合成小的硫醇/炔单体,并在不同浓度下进行间歇聚合。间歇硫醇-炔聚合反应动力学快,分散度大,随浓度增加而增加。发现通过缓慢添加到多功能炔烃核(三(丙-2-炔-1-基)1,3,5-苯三羧酸酯)或烯烃核(三烯丙基1,3,5-苯三羧酸酯)中引入单体会降低分散性在单体浓度为0.5–2.0 M时。通过1H NMR光谱确定支化度在大多数情况下大于0.8。对于具有10mol%核心分子的0.5M单体浓度,发现增加核心分子的比例可将分散性降低至烯烃核和炔烃核的分散度分别低至1.26和1.38。还通过光散射尺寸排阻色谱法(SEC)检测来确定超支化结构的分子量,并通过SEC检测粘度来确定特性粘度。 Kuhn–Mark–Houwink–Sakuradaα参数从批处理的0.35降低到低至0.21(10 mol%烯烃核)或0.16(10 mol%炔烃核),表明硫醇-炔结构变得更球形并采用缓慢的单体添加策略使其致密。这种简单而通用的方法是设计具有良好支化度的分子量和分子量分布可控的超支化聚合物的有前途的新进展。

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