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使用双动态环氧玻璃可降解聚合物开发可持续碳纤维复合材料:刚度、柔韧性和可回收性的协同作用

Development of sustainable carbon fiber composites using dual dynamic epoxy vitrimers: a synergy of stiffness, flexibility, and recyclability.

作者信息

Sharma Harsh, Bijalwan Viranchika, Rana Sravendra

机构信息

School of Advanced Engineering, UPES, Energy Acres Bidholi Dehradun Uttarakhand 248007 India

出版信息

Nanoscale Adv. 2025 Aug 4. doi: 10.1039/d5na00624d.

Abstract

The increasing demand of carbon fiber-reinforced polymer (CFRP) composites in sectors such as aerospace and wind energy underscores the need for sustainable end-of-life solutions. In this work, a dual dynamic bio-based epoxy consisting of covalent adaptable networks (vitrimers) was developed by blending diglycidyl ether of bisphenol-A (DGEBA) with acrylated epoxidized soybean oil (AESO) in varying ratios, cured with 2,2'-dithiodibenzoic acid (DTBA), and transesterification catalyzed by tin(ii) 2-ethylhexanoate (Sn(Oct)). Among the formulations, D70B30 and D50B50 vitrimers exhibited a synergistic balance between mechanical stiffness and flexibility, owing to the aromatic rigidity of DGEBA and the aliphatic softness of AESO. Both vitrimers demonstrated excellent thermal stability ( = 342 °C and 325 °C, respectively), high gel content (>99%), and outstanding self-healing efficiencies (∼92% for D70B30, ∼90% for D50B50) due to dynamic transesterification and disulfide bond exchange mechanisms. They also exhibited rapid stress relaxation and efficient degradability, confirming their vitrimeric behavior. These optimized matrices were used to fabricate CFRP laminates vacuum-assisted resin infusion molding (VARIM), resulting in composites with remarkable mechanical performance. D70B30-CF showed superior tensile strength (281 MPa) and flexural strength (600 MPa), while D50B50-CF exhibited a more rigid response with higher flexural modulus (58.7 GPa). Additionally, the vitrimer matrix allowed for efficient chemical recycling in EG/DMF at 70 °C, enabling complete matrix dissolution and full recovery of undamaged carbon fibers within 4 hours. Structural and morphological integrity of the recycled fibers was confirmed through FTIR, XRD, and SEM analysis. This study presents a viable strategy for developing high-performance, reprocessable, and recyclable CFRPs using sustainable covalent adaptable networks.

摘要

航空航天和风能等领域对碳纤维增强聚合物(CFRP)复合材料的需求不断增加,这凸显了对可持续报废解决方案的需求。在这项工作中,通过将双酚A二缩水甘油醚(DGEBA)与不同比例的丙烯酸化环氧大豆油(AESO)混合,用2,2'-二硫代苯甲酸(DTBA)固化,并由2-乙基己酸锡(II)(Sn(Oct))催化酯交换反应,开发了一种由共价自适应网络(玻璃态高聚物)组成的双动态生物基环氧树脂。在这些配方中,D70B30和D50B50玻璃态高聚物由于DGEBA的芳香刚性和AESO的脂肪族柔软性,在机械刚度和柔韧性之间表现出协同平衡。两种玻璃态高聚物均表现出优异的热稳定性(分别为342℃和325℃)、高凝胶含量(>99%)以及由于动态酯交换和二硫键交换机制而具有的出色自愈效率(D70B30约为92%,D50B50约为90%)。它们还表现出快速的应力松弛和高效的降解性,证实了它们的玻璃态高聚物行为。这些优化的基体用于通过真空辅助树脂灌注成型(VARIM)制造CFRP层压板,从而得到具有卓越机械性能的复合材料。D70B30-CF表现出优异的拉伸强度(281MPa)和弯曲强度(600MPa),而D50B50-CF表现出更刚性的响应,具有更高的弯曲模量(58.7GPa)。此外,玻璃态高聚物基体允许在70℃下于乙二醇/二甲基甲酰胺中进行高效化学回收,能够在4小时内实现基体完全溶解并完全回收未受损的碳纤维。通过傅里叶变换红外光谱(FTIR)、X射线衍射(XRD)和扫描电子显微镜(SEM)分析证实了回收纤维的结构和形态完整性。本研究提出了一种可行的策略,即使用可持续的共价自适应网络来开发高性能、可再加工和可回收的CFRP。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0351/12422222/9a996fb91b5a/d5na00624d-s1.jpg

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