Yang Kang, Zhao Yuncheng, Shang Ke, Zhao Bin
Qingdao Key Laboratory of Flame-Retardant Textile Materials, National Engineering Research Center for Advanced Fire-Safety Materials D & A (Shandong), Institute of Functional Textiles and Advanced Materials, College of Textiles & Clothing, Qingdao University, 308 Ningxia Road, Qingdao 266071, China.
Tianjin Key Laboratory of Fire Safety Technology, Tianjin 300381, China.
Polymers (Basel). 2025 May 30;17(11):1529. doi: 10.3390/polym17111529.
In this study, a solvent-free, slow-curing, inherently flame-retardant polyurea coating was successfully developed through an optimized formulation. The novel polyurea was synthesized using mixed Schiff base latent curing agents derived from terminal polyether amines with different-number average molecular weights (D2000 and D400), methyl isobutyl ketone, and polyethyl phosphate glycol ester (OP550). Subsequently, polyurea/meta-aramid (PUA/AF) composite fabrics were fabricated via a scraping coating technique. Thermogravimetric analysis revealed enhanced char formation and reduced decomposition temperatures due to the incorporation of OP550. Comprehensive flame retardant performance was demonstrated through vertical flame testing, limiting oxygen index, and micro-scale combustion calorimetry, with results showing significantly reduced heat release rates, lower total heat release, and increased residual char. Mechanical evaluations indicated marked improvements in tearing, tensile, single-yarn tensile, and bursting forces, attributed to strong fiber-polyurea interfacial interactions, as confirmed by detailed SEM morphological analyses. Moreover, the PUA/AF composites exhibited excellent static puncture resistance and effective self-healing capability. Collectively, these advancements highlight the potential of PUA/AF composite fabrics as promising candidates for advanced protective textiles, integrating superior flame retardancy, mechanical strength, puncture resistance, and self-repairing functionality.
在本研究中,通过优化配方成功开发了一种无溶剂、慢固化、本质阻燃的聚脲涂层。使用由不同数均分子量的端基聚醚胺(D2000和D400)、甲基异丁基酮和聚乙二醇磷酸酯(OP550)衍生的混合席夫碱潜伏固化剂合成了新型聚脲。随后,通过刮涂技术制备了聚脲/间位芳纶(PUA/AF)复合织物。热重分析表明,由于加入了OP550,焦炭形成增加,分解温度降低。通过垂直燃烧试验、极限氧指数和微尺度燃烧量热法证明了综合阻燃性能,结果显示热释放速率显著降低、总热释放量降低且残炭增加。力学评估表明,撕裂、拉伸、单纱拉伸和爆破力有显著改善,这归因于强纤维-聚脲界面相互作用,详细的扫描电子显微镜形态分析证实了这一点。此外,PUA/AF复合材料表现出优异的抗静态穿刺性能和有效的自修复能力。总体而言,这些进展突出了PUA/AF复合织物作为先进防护纺织品的潜在候选材料的潜力,其集成了卓越的阻燃性、机械强度、抗穿刺性和自修复功能。