Nallbani Belma Gjergjizi, Kahraman Memet Vezir, Degirmenci Isa
Chemistry Department, Faculty of Science, Marmara University, 34722, Istanbul, Turkey.
Chemical Engineering Department, Ondokuz Mayıs University, 55139, Samsun, Turkey.
J Mol Graph Model. 2025 Mar;135:108933. doi: 10.1016/j.jmgm.2024.108933. Epub 2024 Dec 24.
The mechanism of the base-catalyzed thiol-epoxide stage of the thiol-ene/thiol-epoxide curing process was investigated using quantum chemical tools. This study searched for conventional tertiary amines with low to medium basicity as initiators to control reaction rates and tailor industrial applications. Challenges arise from the stronger basicity of initiators, leading to an uncontrollable and short curing application period. This problem was put into quantitative data through kinetic and energetic studies for the first time. Furthermore, the base catalyst formulation of curing agents distinctively has a short pot life. More reactivity of terminal epoxy rings than internal ones was highlighted for the curing agents. It was revealed that the reactivity augments during the curing process while environmental polarity changes from higher to lower, which is one of the reasons that triggers an autocatalytic phenomenon. Electronegative atoms like fluorine on thiols significantly decrease the nucleophilicity of formed thiolate anion, enabling longer curing application.
利用量子化学工具研究了硫醇-烯/硫醇-环氧化合物固化过程中碱催化硫醇-环氧化合物阶段的机理。本研究寻找具有低至中等碱度的常规叔胺作为引发剂,以控制反应速率并定制工业应用。引发剂较强的碱度带来了挑战,导致固化应用期不可控且较短。首次通过动力学和能量学研究将这一问题转化为定量数据。此外,固化剂的碱催化剂配方明显具有较短的适用期。对于固化剂,末端环氧环比内部环氧环具有更高的反应活性。研究表明,在固化过程中,随着环境极性从高到低变化,反应活性增强,这是引发自催化现象的原因之一。硫醇上的氟等电负性原子会显著降低形成的硫醇盐阴离子的亲核性,从而延长固化应用时间。