Janssen Franca A L, Kather Michael, Ksiazkiewicz Agnieszka, Pich Andrij, Mitsos Alexander
Aachener Verfahrenstechnik-Process Systems Engineering and Institute of Technical and Macromolecular Chemistry, RWTH Aachen University, 52056 Aachen, Germany.
DWI-Leibniz-Institute for Interactive Materials, 52056 Aachen, Germany.
ACS Omega. 2019 Aug 13;4(9):13795-13807. doi: 10.1021/acsomega.9b01335. eCollection 2019 Aug 27.
Particle size distribution and in particular the mean particle size are key properties of microgels, which are determined by synthesis conditions. To describe particle growth and particle size distribution over the progress of synthesis of poly(-vinylcaprolactam)-based microgels, a pseudo-bulk model for precipitation copolymerization with cross-linking is formulated. The model is fitted and compared to experimental data from reaction calorimetry and dynamic light scattering, showing good agreement with polymerization progress, final particle size, and narrow particle size distribution. Predictions of particle growth and reaction progress for different experimental setups are compared to the corresponding experimental data, demonstrating the predictive capability and limitations of the model. The comparison to reaction calorimetry measurements shows the strength in the prediction of the overall polymerization progress. The results for the prediction of the particle radii reveal significant deviations and highlight the demand for further investigation, including additional data.
粒径分布,尤其是平均粒径,是微凝胶的关键特性,其由合成条件决定。为了描述基于聚(乙烯基己内酰胺)的微凝胶在合成过程中的颗粒生长和粒径分布,建立了一个用于交联沉淀共聚的拟本体模型。该模型与反应量热法和动态光散射的实验数据进行拟合和比较,结果表明该模型与聚合过程、最终粒径以及窄粒径分布具有良好的一致性。将不同实验装置下颗粒生长和反应进程的预测结果与相应的实验数据进行比较,展示了该模型的预测能力和局限性。与反应量热法测量结果的比较显示了该模型在预测整体聚合进程方面的优势。颗粒半径预测结果显示出显著偏差,并突出了进一步研究的必要性,包括获取更多数据。