Srivastav Harsh, Weber Adam Z, Radke Clayton J
Department of Chemical and Biomolecular Engineering, University of California, Berkeley, 201 Gilman South Drive, Berkeley, California 94720, United States.
Energy Technologies Area, Lawrence Berkeley National Laboratory, Building 30, Cyclotron Road, Berkeley, California 94720, United States.
Langmuir. 2024 Apr 2;40(13):6666-6674. doi: 10.1021/acs.langmuir.3c03904. Epub 2024 Mar 18.
Perfluorosulfonic acid (PFSA) ionomers serve a vital role in the performance and stability of fuel-cell catalyst layers. These properties, in turn, depend on the colloidal processing of precursor inks. To understand the colloidal structure of fuel-cell catalyst layers, we explore the aggregation of PFSA ionomers dissolved in water/alcohol solutions and relate the predicted aggregation to experimental measurements of solution pH. Not all side chains contribute to measured pH because of burying inside particle aggregates. To account for the measured degree of dissociation, a new description is developed for how PFSA aggregates interact with each other. The developed single-counterion electrostatic repulsive pair potential from Part I is incorporated into the Smoluchowski collision-based kinetics of interacting aggregates with buried side chains. We demonstrate that the surrounding solvent mixture affects the degree of aggregation as well as the pH of the system primarily through the solution dielectric permittivity, which drives the strength of the interparticle repulsive energies. Successful pH prediction of Nafion ionomer dispersions in water/-propanol solutions validates the numerical calculations. Nafion-dispersion pH measurements serve as a surrogate for Nafion particle-size distributions. The model and framework can be leveraged to explore different ink formulations.
全氟磺酸(PFSA)离聚物在燃料电池催化剂层的性能和稳定性方面起着至关重要的作用。而这些性能又取决于前驱体墨水的胶体加工过程。为了理解燃料电池催化剂层的胶体结构,我们研究了溶解在水/醇溶液中的PFSA离聚物的聚集情况,并将预测的聚集情况与溶液pH值的实验测量结果相关联。由于部分侧链埋在颗粒聚集体内部,并非所有侧链都会对测量的pH值产生影响。为了解释测量的解离程度,我们针对PFSA聚集体之间的相互作用开发了一种新的描述方法。将第一部分中开发的单抗衡离子静电排斥对势纳入到具有埋入侧链的相互作用聚集体基于斯莫卢霍夫斯基碰撞的动力学中。我们证明,周围的溶剂混合物主要通过溶液介电常数影响聚集程度以及系统的pH值,而溶液介电常数决定了粒子间排斥能的强度。对Nafion离聚物在水/异丙醇溶液中的分散体进行成功的pH值预测验证了数值计算的结果。Nafion分散体的pH值测量可作为Nafion粒径分布情况的替代指标。该模型和框架可用于探索不同的墨水配方。