Synthesis of nitrile-containing reactive phenolphthalein polyaryletherketone and synergistic toughening research on the toughening of epoxy resin—phase structure, mechanical and thermal properties

IF 3.1 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Jiawei Liu, Tongjia Zhang, Shoutian Qiu, Lixin Song, Guangyuan Zhou and Honghua Wang
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Abstract

The introduction of reactive groups capable of participating in epoxy cross-linking into the molecular chains of conventional thermoplastic toughening agents effectively enhances the interfacial compatibility between thermoplastic and thermosetting resins, resulting in a significant improvement in system impact toughness. Building on this approach, this study innovatively incorporates polar nitrile groups into the molecular chains of thermoplastic polyaryletherketone agents containing terminal reactive groups, thereby exploring the synergistic mechanism between reactive and nitrile groups. A systematic investigation is conducted to examine how variations in the nitrile group content and the addition level of the toughening agent influence the toughening effect of epoxy resin. Additionally, the influence of different epoxy system phase structures on mechanical properties is assessed. Experimental results reveal that when the toughening agent PEKCN-OH is added at less than 10 parts per hundred resin (phr), the epoxy system exhibits a sea-island morphology, with the impact strength decreasing with increasing nitrile group content. When no nitrile groups are present (using PEKC-OH resin), the impact strength reaches 23.5 kJ m−2, representing a 97% increase compared to the control without the toughening agent. For addition levels exceeding 10 phr, the system transitions to a bicontinuous structure. In this regime, the impact strength initially increases before decreasing as the nitrile group content increases. At a nitrile group content of 50% (using PEKCN-OH-2 resin), the impact strength reaches 25.8 kJ m−2, representing a 117% increase. Importantly, the addition of these toughening agents not only prevents a reduction in the service temperature of the epoxy resin but also enhances its thermal stability. In conclusion, the PEKCN-OH developed in this study serves as a highly efficient, easily prepared reactive thermoplastic toughening agent suitable for industrial production. It holds great promise for use in demanding industrial applications, including aerospace, electronics and electrical appliances, and automotive manufacturing. The findings are expected to make significant contributions to material innovation and product performance optimization in these sectors.

Abstract Image

含腈反应性酚酞聚芳醚酮的合成及增强型增韧环氧树脂的相结构、力学性能和热性能研究
在常规热塑性增韧剂的分子链中引入能够参与环氧交联的反应基团,有效地增强了热塑性树脂与热固性树脂之间的界面相容性,从而显著提高了体系的冲击韧性。在此基础上,本研究创新性地将极性腈基团引入到含有末端反应基团的热塑性聚芳醚酮试剂的分子链中,从而探索反应基团与腈基团之间的协同作用机制。系统研究了增韧剂中腈基含量和添加量的变化对环氧树脂增韧效果的影响。此外,还评估了不同环氧体系相结构对力学性能的影响。实验结果表明,当增韧剂PEKCN-OH的加入量小于10份/百树脂(phr)时,环氧体系呈现海岛形态,冲击强度随腈基含量的增加而降低。当没有丁腈基团存在时(使用PEKC-OH树脂),冲击强度达到23.5 kJ m−2,与不添加增塑剂的对照相比,提高了97%。当添加量超过10phr时,系统转变为双连续结构。在这种情况下,随着腈基含量的增加,冲击强度先增加后降低。当腈基含量为50%时(采用PEKCN-OH-2树脂),冲击强度达到25.8 kJ m−2,提高117%。重要的是,添加这些增韧剂不仅可以防止环氧树脂使用温度的降低,还可以增强其热稳定性。综上所述,本研究开发的PEKCN-OH是一种高效,易于制备的反应性热塑性增韧剂,适用于工业生产。它在要求苛刻的工业应用中具有很大的前景,包括航空航天,电子和电器以及汽车制造。研究结果有望为这些领域的材料创新和产品性能优化做出重大贡献。
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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来源期刊
Reaction Chemistry & Engineering
Reaction Chemistry & Engineering Chemistry-Chemistry (miscellaneous)
CiteScore
6.60
自引率
7.70%
发文量
227
期刊介绍: Reaction Chemistry & Engineering is a new journal reporting cutting edge research into all aspects of making molecules for the benefit of fundamental research, applied processes and wider society. From fundamental, molecular-level chemistry to large scale chemical production, Reaction Chemistry & Engineering brings together communities of chemists and chemical engineers working to ensure the crucial role of reaction chemistry in today’s world.
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