热固性聚合物
环氧树脂
材料科学
双酚A
马来酸酐
极限抗拉强度
胶粘剂
复合材料
抗弯强度
相容性(地球化学)
动态力学分析
聚合物
牙髓(牙)
艾氏冲击强度试验
原材料
环氧化大豆油
双酚
环氧氯丙烷
抗剪强度(土壤)
化学改性
作者
Jiyun Qi,Xinyi Hui,Xipeng Zhang,Jia‐Long Wen,Tong‐Qi Yuan
摘要
Epoxy resins are indispensable to structural composites, coatings, and adhesives. However, conventional bisphenol A (BPA)-based epoxy resins are limited by toxicity concerns, intrinsic brittleness, poor end-of-life recyclability, and a high carbon footprint. Here, a rigid-flexible bio-based network design is developed by coupling epoxidized soybean oil (ESO), lignin, and malic acid through maleic anhydride bridging, which simultaneously improves component compatibility and introduces dynamic ester linkages for pH-responsive degradation. The resulting thermoset achieved an unusual combination of strength, ductility, and environmental resilience, delivering 22.08 MPa shear strength as a structural adhesive and 31 4.57 MPa tensile strength in glass-fabric composites, together with an ≈250% increase in flexural strain relative to the BPA epoxy. It further maintains robust performance after exposure to chemically aggressive media and extreme temperatures ranging from -196 to 200°C. Life cycle assessment (LCA) and techno-economic analysis (TEA) confirmed its environmental friendliness and competitive cost‑effectiveness. This work demonstrates a sustainable design for high‑performance thermoset, offering a viable sustainable alternative for applications such as structural adhesives and wind‑turbine composites, thereby accelerating the transition toward a circular bio‑economy.
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