El Khezraji Said, Thakur Suman, Raihane Mustapha, López-Manchado Miguel Angel, Belachemi Larbi, Verdejo Raquel, Lahcini Mohammed
IMED-Lab, Faculty of Sciences and Techniques, Cadi Ayyad University, Avenue Abdelkrim Elkhattabi, B.P. 549, Marrakech 40000, Morocco.
Instituto de Ciencia y Tecnologia de Polimeros, ICTP-CSIC, C/Juan de la Cierva, 3, 28006 Madrid, Spain.
Polymers (Basel). 2021 Dec 20;13(24):4460. doi: 10.3390/polym13244460.
Foam products are one of the largest markets for polyurethane (PU) and are heavily used in many sectors. However, current PU formulations use highly toxic and environmentally unfriendly production processes. Meanwhile, the increasing environmental concerns and regulations are intensifying the research into green and non-toxic products. In this study, we synthesized flexible polyurethane foam (PUF) using different weight percentages (0.025%, 0.05% and 0.1%) of a non-toxic bismuth catalyst. The bismuth-catalyzed foams presented a well evolved cellular structure with an open cell morphology. The properties of the bismuth-catalyzed flexible PUF, such as the mechanical, morphological, kinetic and thermal behaviors, were optimized and compared with a conventional tin-catalyzed PUF. The bismuth-catalyst revealed a higher isocyanate conversion efficiency than the stannous octoate catalyst. When comparing samples with similar densities, the bismuth-catalyzed foams present better mechanical behavior than the tin-catalyzed sample with similar thermal stability. The high solubility of bismuth triflate in water, together with its high Lewis acidity, have been shown to benefit the production of PU foams.
泡沫产品是聚氨酯(PU)最大的市场之一,并且在许多领域都有大量应用。然而,目前的聚氨酯配方使用的是剧毒且对环境不友好的生产工艺。与此同时,日益增长的环境问题和相关法规正在推动对绿色无毒产品的研究。在本研究中,我们使用不同重量百分比(0.025%、0.05%和0.1%)的无毒铋催化剂合成了软质聚氨酯泡沫(PUF)。铋催化的泡沫呈现出具有开孔形态的良好演化的泡孔结构。对铋催化的软质PUF的性能,如力学、形态、动力学和热行为进行了优化,并与传统锡催化的PUF进行了比较。铋催化剂显示出比辛酸亚锡催化剂更高的异氰酸酯转化效率。当比较具有相似密度的样品时,铋催化的泡沫在热稳定性相似的情况下,比锡催化的样品表现出更好的力学性能。三氟甲磺酸铋在水中的高溶解度及其高路易斯酸度,已被证明有利于聚氨酯泡沫的生产。