De Keer Lies, Van Steenberge Paul H M, Reyniers Marie-Françoise, D'hooge Dagmar R
Laboratory for Chemical Technology (LCT), Department of Materials, Textiles and Chemical Engineering, Faculty of Engineering and Architecture, Ghent University, Technologiepark 125, 9052 Ghent, Belgium.
Centre for Textiles Science and Engineering (CTSE), Department of Materials, Textiles and Chemical Engineering, Faculty of Engineering and Architecture, Ghent University, Technologiepark 70a, 9052 Ghent, Belgium.
Polymers (Basel). 2021 Jul 22;13(15):2410. doi: 10.3390/polym13152410.
A challenge in the field of polymer network synthesis by a step-growth mechanism is the quantification of the relative importance of inter- vs. intramolecular reactions. Here we use a matrix-based kinetic Monte Carlo (MC) framework to demonstrate that the variation of the chain length distribution and its averages (e.g., number average chain length ), are largely affected by intramolecular reactions, as mostly ignored in theoretical studies. We showcase that a conventional approach based on equations derived by Carothers, Flory and Stockmayer, assuming constant reactivities and ignoring intramolecular reactions, is very approximate, and the use of asymptotic limits is biased. Intramolecular reactions stretch the functional group (FG) conversion range and reduce the average chain lengths. In the likely case of restricted mobilities due to diffusional limitations because of a viscosity increase during polymerization, a complex profile with possible plateau formation may arise. The joint consideration of stoichiometric and non-stoichiometric conditions allows the validation of hypotheses for both the intrinsic and apparent reactivities of inter- and intramolecular reactions. The MC framework is also utilized for reverse engineering purposes, aiming at the identification of advanced (pseudo-)analytical equations, dimensionless numbers and mechanistic insights. We highlight that assuming average molecules by equally distributing A and B FGs is unsuited, and the number of AB intramolecular combinations is affected by the number of monomer units in the molecules, specifically at high FG conversions. In the absence of mobility constraints, dimensionless numbers can be considered to map the time variation of the fraction of intramolecular reactions, but still, a complex solution results, making a MC approach overall most elegant.
通过逐步增长机制进行聚合物网络合成领域面临的一个挑战是分子间反应与分子内反应相对重要性的量化。在此,我们使用基于矩阵的动力学蒙特卡罗(MC)框架来证明,链长分布及其平均值(例如数均链长)的变化在很大程度上受分子内反应影响,而这在理论研究中大多被忽略。我们展示了一种基于卡罗瑟斯、弗洛里和斯托克迈耶推导方程的传统方法,该方法假设反应活性恒定且忽略分子内反应,是非常近似的,并且使用渐近极限存在偏差。分子内反应扩展了官能团(FG)的转化范围并缩短了平均链长。在聚合过程中由于粘度增加导致扩散限制而可能出现迁移受限的情况下,可能会出现带有可能的平台形成的复杂分布。对化学计量和非化学计量条件的联合考虑允许对分子间和分子内反应的固有和表观反应活性的假设进行验证。MC框架还用于逆向工程目的,旨在识别先进的(伪)解析方程、无量纲数和机理见解。我们强调,假设通过均匀分布A和B官能团来得到平均分子是不合适的,并且AB分子内组合的数量受分子中单体单元数量的影响,特别是在高官能团转化率时。在不存在迁移限制的情况下,可以考虑使用无量纲数来描绘分子内反应分数的时间变化,但仍然会得到一个复杂的解,这使得MC方法总体上最为简洁。