环氧树脂
材料科学
环氧化大豆油
共聚物
单体
三羟甲基丙烷
固化(化学)
大豆油
聚合物
化学工程
傅里叶变换红外光谱
高分子化学
碳酸盐
混合材料
聚氨酯
超临界二氧化碳
聚合
异氰酸酯
红外光谱学
棕榈油
氨解
作者
Nahikari Martin-Larrañaga,Iker Razquin,Nora Aranburu,Oihane Sánz,Alba González,Lourdes Irusta
标识
DOI:10.1016/j.porgcoat.2025.109716
摘要
Carbonated soybean oil bio-based polyhydroxyurethanes (PHUs) produced without isocyanates often have inferior properties compared to their traditional isocyanate-based counterparts. To improve these properties, this study presents two strategies: copolymerization with other carbonated monomers and hybridization with epoxy monomers. Carbonated soybean oil (CSBO) and trimethylolpropane triglycidyl carbonate (TMPTC) were synthesized using the corresponding epoxidized monomers and carbon dioxide (CO 2 ). Various compositions polyhydroxyurethane (co)polymers were then prepared by an aminolysis reaction at 80 °C. CSBO/epoxy hybrids were also prepared by curing the samples with amines, first at room temperature and then at 80 °C. Fourier Transform Infrared Spectroscopy (FTIR) and gel content experiments showed that high conversion was achieved in both systems. Notably, the hybrid polymers exhibited a broader range of mechanical properties compared to the non-isocyanate polyurethane copolymers (NIPUs). Thus, the hybridization of CSBO with epoxy compounds offers a sustainable approach for the development of materials with different mechanical and barrier properties that can be customized for coating applications. While similar approaches have been individually studied, a direct comparison of their effectiveness within the same system remains unexplored. • NIPU polymers from epoxidized soybean oil and CO2 • Copolymerization with a shorter carbonated monomer versus hybridization with epoxy • High conversions for copolymers • In hybrids epoxy accelerates the carbonate reaction • Hybrid polymers show excellent mechanical properties and low water permeability
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