构建双动态共价网络,在温和条件下高效降解和回收碳纤维增强环氧复合材料废弃物

IF 6.3 2区 化学 Q1 POLYMER SCIENCE Polymer Degradation and Stability Pub Date : 2024-11-24 DOI:10.1016/j.polymdegradstab.2024.111102
Cong Yang , Xinnian Xia , Yale Xiao , Guoqing Wei , Yanbing Lu
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引用次数: 0

摘要

从环氧复合材料废弃物中回收高价值芯材对环境保护和可持续发展至关重要。然而,由于环氧树脂具有稳定的三维交联网络结构,其在温和条件下的高效降解仍然是一个重大挑战。在此,我们提出了一种创新的策略,利用双动态共价键来实现环氧树脂在溶剂中的高效、安全、可控降解。具体而言,将含亚胺键的生物基环氧单体BV-EP与商品环氧单体DGEBA结合,用nadic甲基酸酐(NMA)固化,制备了具有双动态共价键(亚胺键和酯键)的环氧树脂DxBVy/NMA。结果表明,在DxBVy/NMA体系中加入BV-EP,保持了良好的热力学性能和热稳定性。值得注意的是,D5BV5/NMA在160°C的氨基乙醇中仅在25分钟内就实现了100%的降解,表明了非常高的降解效率。利用FTIR和1H NMR对其降解机理进行了分析,发现交联结构中的亚胺键和酯键均可与氨基乙醇发生交换反应。重要的是,碳纤维增强环氧复合材料CF- d5bv5 /NMA也在该系统中被有效降解,允许通过简单的后处理步骤回收,产生几乎无损的碳纤维(CF)和高纯度单体9,9-双(4-氨基苯基)芴(BAPF)。本文介绍了一种从碳纤维增强环氧复合材料废料中高效、无损地回收CF的新方法,从而为环氧树脂领域的可持续发展做出贡献。
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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Efficient degradation and recycling of carbon fiber reinforced epoxy composite wastes under mild conditions by constructing dual dynamic covalent networks
The recycling of high-value cores from epoxy composite wastes is critical for environmental protection and sustainable development. However, the efficient degradation of epoxy resin under mild conditions remains a significant challenge due to its stable 3D crosslinked network structure. Herein, we propose an innovative strategy utilizing dual dynamic covalent bonds to achieve efficient, safe, and controlled degradation of epoxy resins in solvents. Specifically, a series of epoxy resins DxBVy/NMA containing dual dynamic covalent bonds (imine and ester bonds) were prepared by combining the bio-based epoxy monomer BV-EP, which contains imine bonds, with the commercial epoxy monomer DGEBA, followed by curing with nadic methyl anhydride (NMA). The results demonstrate that the incorporation of BV-EP maintains excellent thermomechanical properties and thermal stability in DxBVy/NMA systems. Remarkably, D5BV5/NMA achieved 100 % degradation in aminoethanol at 160 °C within just 25 min, indicating an extraordinarily high degradation efficiency. The degradation mechanism was elucidated using FTIR and 1H NMR, revealing that both imine and ester bonds in the crosslinked structure can undergo exchange reactions with amino groups in aminoethanol. Importantly, the carbon fiber reinforced epoxy composite CF-D5BV5/NMA was also efficiently degraded in this system, allowing for recycling through a straightforward post-processing step, yielding virtually non-destructive carbon fibers (CF) and high-purity monomer 9,9-bis(4-aminophenyl)fluorene (BAPF). This work introduces a novel approach for the efficient and lossless recycling of CF from the carbon fiber reinforced epoxy composite wastes, thereby contributing to the sustainable development of the epoxy resin field.
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来源期刊
Polymer Degradation and Stability
Polymer Degradation and Stability 化学-高分子科学
CiteScore
10.10
自引率
10.20%
发文量
325
审稿时长
23 days
期刊介绍: Polymer Degradation and Stability deals with the degradation reactions and their control which are a major preoccupation of practitioners of the many and diverse aspects of modern polymer technology. Deteriorative reactions occur during processing, when polymers are subjected to heat, oxygen and mechanical stress, and during the useful life of the materials when oxygen and sunlight are the most important degradative agencies. In more specialised applications, degradation may be induced by high energy radiation, ozone, atmospheric pollutants, mechanical stress, biological action, hydrolysis and many other influences. The mechanisms of these reactions and stabilisation processes must be understood if the technology and application of polymers are to continue to advance. The reporting of investigations of this kind is therefore a major function of this journal. However there are also new developments in polymer technology in which degradation processes find positive applications. For example, photodegradable plastics are now available, the recycling of polymeric products will become increasingly important, degradation and combustion studies are involved in the definition of the fire hazards which are associated with polymeric materials and the microelectronics industry is vitally dependent upon polymer degradation in the manufacture of its circuitry. Polymer properties may also be improved by processes like curing and grafting, the chemistry of which can be closely related to that which causes physical deterioration in other circumstances.
期刊最新文献
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