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Thermal properties and the decomposition path of novel UV polymers of terpene-based monomer: citronellyl methacrylate

机译:萜烯类单体新型UV聚合物的热性能及分解路径:甲基丙烯酸香茅烯酯

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Abstract Thermal properties and the decomposition path of more environmentally friendly polymers in both atmospheres: inert and oxidizing have been studied with a use of simultaneous TG/FTIR/QMS and DSC methods. The polymeric materials in the UV-polymerization process of cyclohexyl methacrylate and methacrylate monomer obtained from natural terpene alcohol: citronellol, using different compositions of monomers were prepared. The glass transition temperature (Tg) and thermal stability of these high solvent and chemical resistant materials were dependent on the composition and increased with increasing cyclic monomer content in the compositions. The Tg changed from 9.8˚C to 47.5˚C and a thermal stability from 195˚C to 222˚C (inert atmosphere) and from 160˚C to 217˚C (oxidizing atmosphere). The TG/FTIR/QMS analysis proved the emission of cyclohexyl methacrylate, citronellyl methacrylate and their lower molecular mass decomposition fragments, e.g., propene, cyclohexane, citronellol, citronellal, formic acid, methacrylic acid and CO, CO2 during heating of these materials in helium and air atmospheres. It indicated the same radical mechanism of their decomposition in both atmospheres which meant that the presence of oxygen did not affect the course of decomposition but reduced the initial decomposition temperature of the copolymers.
机译:摘要 利用TG/FTIR/QMS和DSC两种大气中的惰性和氧化性两种环境下聚合物的热性能和分解路径进行了研究。该聚合材料在紫外聚合过程中制备了甲基丙烯酸环己酯和甲基丙烯酸酯单体,制备了由天然萜烯醇:香茅醇制备的聚合物。这些高溶剂和耐化学性材料的玻璃化转变温度(Tg)和热稳定性取决于组合物,并随着组合物中环状单体含量的增加而增加。Tg从9.8°C变为47.5°C,热稳定性从195°C变为195°C至222°C(惰性气氛),热稳定性为160°C至217°C(氧化常变性)。TG/FTIR/QMS 分析证明了甲基丙烯酸环己酯、甲基丙烯酸香茅烯酸酯及其较低分子量分解片段的释放,例如丙烯、环己烷、香茅醇、香茅醛、甲酸、甲基丙烯酸和 CO、CO2 在氦气和空气气氛中加热这些材料。它表明它们在两种气氛中分解的自由基机制相同,这意味着氧的存在不会影响分解过程,但会降低共聚物的初始分解温度。

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