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首页> 外文期刊>Journal of Applied Polymer Science >Synthesis of liquid crystalline polymers from polyethylene terephthalate and 4-acetoxybenzoic acid: A kinetic study
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Synthesis of liquid crystalline polymers from polyethylene terephthalate and 4-acetoxybenzoic acid: A kinetic study

机译:由聚对苯二甲酸乙二醇酯和4-乙酰氧基苯甲酸合成液晶聚合物的动力学研究

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Liquid crystalline polymers (LCPs) have been synthesized from polyethylene terephthalate (PET) and 4-acetoxybenzoic acid (OB) through melt step-growth polymerization. The presence of liquid crystalline texture is first examined using optical polarizing microscopy. The thermal durability of the developed systems is studied through thermogravimetric analysis. The kinetics of the polymerization processes is analyzed. The effectiveness of three catalysts commonly used in polyesterification is investigated. The effect of reaction temperature is also examined. The progress of polycondensation reactions over time takes a nonlinear behavior of slight sigmoidal shape, irrespective of whether or not the reaction is catalyzed. Simple second and third order equations, along with a nonlinear model, are used to determine the kinetic parameters characterizing these reactions. The rate of reaction is enhanced when the reaction temperature is increased. Overall, second-order kinetics well describes the polymerization reactions when the data set is divided into two regions. Antimony trioxide induces a more visible enhancement to the rate of reaction, compared to zinc acetate and sodium acetate. The presence of a catalyst generally increases the reaction activation energy. This indicates that entropy factors outweigh the increase in activation energy and drive the catalyzed reactions to completion.
机译:液晶聚合物(LCP)已通过熔融逐步生长聚合反应从聚对苯二甲酸乙二醇酯(PET)和4-乙酰氧基苯甲酸(OB)合成。首先使用光学偏振显微镜检查液晶织构的存在。通过热重分析研究了开发系统的热耐久性。分析了聚合过程的动力学。研究了聚酯聚合中常用的三种催化剂的有效性。还检查了反应温度的影响。缩聚反应随时间的发展呈现出轻微的S形形状的非线性行为,而不管反应是否被催化。简单的二阶和三阶方程以及非线性模型可用于确定表征这些反应的动力学参数。当反应温度升高时,反应速率提高。总的来说,当数据集分为两个区域时,二阶动力学很好地描述了聚合反应。与乙酸锌和乙酸钠相比,三氧化二锑引起反应速率的更明显的增强。催化剂的存在通常会增加反应活化能。这表明熵因子超过了活化能的增加,并推动了催化反应的完成。

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