Thermoplastic-like mechanical performance of heterogeneous photopolymers for additive manufacturing with tailored hyperbranched rubbers

Vojtěch Musil, Dominik Laa, Mojtaba Ahmadi, Jürgen Stampfl, Robert Liska, Jan Merna and Katharina Ehrmann
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Abstract

Conventional photopolymers used in light-based additive manufacturing are typically brittle materials with thermoset characteristics. Here we introduce a one-step synthesis of hyperbranched polyethylene rubbers functionalized with pendant methacrylic groups and their application as tougheners of a model brittle photopolymer based on non-volatile styrene and maleimide derivatives. The rubber tougheners can be tailored to tune their compatibility with the matrix, influencing the morphology and the thermomechanical properties of the final printed resins. The resulting polymer structures were analysed by atomic force microscopy, revealing various degrees of phase separation related to the rubber molar mass and methacrylate functionalization. Further, the analysis of the prepared toughened materials revealed the ability of functionalized hyperbranched polyethylene rubbers to improve the mechanical properties significantly (doubled stress at break and improvement of strain at break by a factor of 103 compared to the matrix), while glass transition temperatures around 100 °C could be maintained. Notably, even tensile behaviour mimicking typical thermoplastic yield strain comparable to ABS was observed in one of the prepared materials. This monomer/rubber system appeared to be the most promising and was therefore selected for in-depth analysis of the curing process using photo-rheology and photo-DSC. Finally, this material was used for hot lithography and several highly detailed objects were prepared, demonstrating the good printability of this toughened material.

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用定制超支化橡胶增材制造的非均相光聚合物的热塑性类机械性能
用于光基增材制造的传统光聚合物通常是具有热固性特性的脆性材料。本文介绍了以甲基丙烯酸基团为官能团的超支化聚乙烯橡胶的一步法合成及其在非挥发性苯乙烯和马来酰亚胺衍生物为基础的模型脆性光聚合物增韧剂中的应用。橡胶增韧剂可以定制以调整其与基体的相容性,从而影响最终打印树脂的形态和热机械性能。通过原子力显微镜对聚合物结构进行了分析,揭示了不同程度的相分离与橡胶摩尔质量和甲基丙烯酸酯功能化有关。此外,对所制备的增韧材料的分析表明,功能化超支化聚乙烯橡胶能够显著改善机械性能(断裂应力加倍,断裂应变比基体提高103倍),而玻璃化转变温度可以保持在100℃左右。值得注意的是,在其中一种制备的材料中,甚至可以观察到类似ABS的典型热塑性屈服应变的拉伸行为。这种单体/橡胶体系似乎是最有前途的,因此被选中使用光流变学和光- dsc对固化过程进行深入分析。最后,将这种材料用于热光刻,并制备了一些非常详细的物体,证明了这种增韧材料的良好印刷性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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