Tan Chen, Luona Viivi, Tirri Teija, Wilen Carl-Eric
Laboratory of Polymer Technology and Center for Functional Materials, Faculty of Science and Engineering/Chemical Engineering, Åbo Akademi University, Biskopsgatan 8, 20500 Turku, Finland.
Polymers (Basel). 2018 Jul 16;10(7):781. doi: 10.3390/polym10070781.
This work explores the possibility of synthesizing moisture-curable silane-terminated poly(urethane-urea)s (SPURs) of low viscosity. First, NCO-terminated urethane prepolymers were prepared, followed by silane end-capping. The impact of polyol molecular weight and the ratio of isocyanate to polyol (NCO/OH) on viscosity and the properties of SPUR were examined. As alternatives to the organotin catalysts traditionally used for the polyurethane synthesis and curing processes, bismuth carboxylate catalysts were evaluated. In addition, the effect of organofunctional groups in the aminosilane structure (R1⁻NH⁻R2⁻Si(OR3)₃), i.e., R1 (alkyl, aryl or trimethoxysilyl-propyl), the spacer R2 (α or γ) and alkyl group R3 (methyl or ethyl), was examined. The chemical and physical structures of the SPUR were investigated by nuclear magnetic resonance spectroscopy (NMR), Fourier transform infrared spectroscopy (FT-IR) and the mechanical properties were evaluated by tensile tests. The results reveal that silane-terminated, moisture-curable polyurethanes can be successfully synthesized and cured with bismuth carboxylate catalysts. SPUR exhibiting low viscosity, with adequate tensile strength and elongation can be prepared using environmentally benign bismuth carboxylate catalyst having a high metal content of 19%⁻21%, by utilizing secondary aminosilane end-cappers and an optimal combination of the polyol molecular weight and NCO/OH ratio.
本工作探索了合成低粘度的可湿气固化的硅烷封端聚(聚氨酯 - 脲)(SPURs)的可能性。首先,制备了异氰酸酯封端的聚氨酯预聚物,然后进行硅烷封端。研究了多元醇分子量以及异氰酸酯与多元醇的比例(NCO/OH)对SPUR粘度和性能的影响。作为传统上用于聚氨酯合成和固化过程的有机锡催化剂的替代品,对羧酸铋催化剂进行了评估。此外,还研究了氨基硅烷结构(R1⁻NH⁻R2⁻Si(OR3)₃)中的有机官能团的影响,即R1(烷基、芳基或三甲氧基甲硅烷基丙基)、间隔基R2(α或γ)和烷基R3(甲基或乙基)。通过核磁共振光谱(NMR)、傅里叶变换红外光谱(FT - IR)研究了SPUR的化学和物理结构,并通过拉伸试验评估了其机械性能。结果表明,可湿气固化的硅烷封端聚氨酯可以用羧酸铋催化剂成功合成和固化。通过使用仲氨基硅烷封端剂以及多元醇分子量和NCO/OH比例的最佳组合,使用金属含量高达19% - 21%的环境友好型羧酸铋催化剂,可以制备出具有低粘度、足够拉伸强度和伸长率的SPUR。