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坚韧的圆形玻璃纤维复合材料——一种定制的动态硼酸酯界面

Tough and circular glass fiber composites a tailored dynamic boronic ester interface.

作者信息

Karunarathna Menisha S, Rahman Md Anisur, Yang Guang, Gainaru Catalin, Demchuck Zoriana, Bowland Christopher C, Meyer Harry M, Ghezawi Natasha, Saito Tomonori

机构信息

Chemical Sciences Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831, USA.

Bredesen Center for Interdisciplinary Research and Education, University of Tennessee Knoxville, Knoxville, TN 37966, USA.

出版信息

Mater Horiz. 2025 Feb 3;12(3):788-801. doi: 10.1039/d4mh01452a.

Abstract

Glass fiber reinforced polymer (GFRP) composites are valued for their strength and cost-effectiveness. However, traditional GFRPs often face challenges for end-of-life recycling due to their non-depolymerizable thermoset matrices, and long-term performance due to inadequate interfacial adhesion, which can lead to fiber-matrix delamination. Here, we have designed dynamic fiber-matrix interfaces to allow tough and closed-loop recyclable GFRPs by utilizing a vitrimer, derived from upcycled polystyrene--poly(ethylene--butylene)--polystyrene (SEBS) with boronic ester (S-Bpin) and amine-based diol crosslinker. The boronic ester groups in S-Bpin form dynamic covalent bonds with the naturally present hydroxyl groups on the unsized GF surface, which eliminates the need for fiber sizing and enables facile closed-loop recyclability of both the fibers and the vitrimer matrix. The resulting strong fiber-matrix interface, depicted by the Raman mapping, leads to a 552% increase in-plane shear toughness (6.2 ± 0.3 MJ m) and 27% ultimate tensile strength (361 ± 89.2 MPa) compared to those of the conventional epoxy-based matrix (0.95 ± 0.05 MJ m and 264 ± 59.7 MPa, respectively). The network rearrangement through dynamic boronic ester exchange enables fast thermoformability and repairability of micro-cracks at elevated temperatures. Additionally, both the matrix and composite demonstrate strong adhesion to various surfaces including steel and glasses exhibiting ≥6 MPa lap shear strength, which expands their suitability for diverse industrial applications. The readily created dynamic interface between boronic ester functionalized vitrimer and neat GFs presents a promising strategy for developing closed-loop recyclable, multifunctional structural materials, offering a sustainable alternative to non-recyclable thermoset GFRPs and contributes to a circular economy in composite materials.

摘要

玻璃纤维增强聚合物(GFRP)复合材料因其强度和成本效益而受到重视。然而,传统的GFRP由于其不可解聚的热固性基体,在生命周期结束时的回收利用常常面临挑战,并且由于界面粘附不足,其长期性能也受到影响,这可能导致纤维 - 基体分层。在此,我们设计了动态纤维 - 基体界面,通过利用一种玻璃塑料(vitrimer)来实现坚韧且可闭环回收的GFRP,该玻璃塑料由升级回收的聚苯乙烯 - 聚(乙烯 - 丁烯) - 聚苯乙烯(SEBS)与硼酸酯(S - Bpin)和胺基二醇交联剂制得。S - Bpin中的硼酸酯基团与未上浆的玻璃纤维(GF)表面天然存在的羟基形成动态共价键,这消除了对纤维上浆的需求,并使纤维和玻璃塑料基体都能实现简便的闭环可回收性。拉曼映射显示,由此产生的强纤维 - 基体界面使面内剪切韧性提高了552%(达到6.2±0.3 MJ/m²),极限拉伸强度提高了27%(达到361±89.2 MPa),相比之下,传统环氧基基体的面内剪切韧性为0.95±0.05 MJ/m²,极限拉伸强度为264±59.7 MPa。通过动态硼酸酯交换进行的网络重排使材料在高温下具有快速热成型性和微裂纹可修复性。此外,基体和复合材料对包括钢和玻璃在内的各种表面都表现出很强的粘附力,搭接剪切强度≥6 MPa,这扩大了它们在各种工业应用中的适用性。硼酸酯功能化玻璃塑料与纯玻璃纤维之间易于形成的动态界面为开发闭环可回收的多功能结构材料提供了一种有前景的策略,为不可回收的热固性GFRP提供了可持续的替代方案,并有助于复合材料领域的循环经济。

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