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Multiscale Modeling of Structure Transport and Reactivity in Alkaline Fuel Cell Membranes: Combined Coarse-Grained Atomistic and Reactive Molecular Dynamics Simulations

机译:碱性燃料电池膜的结构传输和反应性的多尺度建模:粗粒化原子和反应性分子动力学模拟的组合

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摘要

In this study, molecular dynamics (MD) simulations of hydrated anion-exchange membranes (AEMs), comprised of poly(p-phenylene oxide) (PPO) polymers functionalized with quaternary ammonium cationic groups, were conducted using multiscale coupling between three different models: a high-resolution coarse-grained (CG) model; Atomistic Polarizable Potential for Liquids, Electrolytes and Polymers (APPLE&P); and ReaxFF. The advantages and disadvantages of each model are summarized and compared. The proposed multiscale coupling utilizes the strength of each model and allows sampling of a broad spectrum of properties, which is not possible to sample using any of the single modeling techniques. Within the proposed combined approach, the equilibrium morphology of hydrated AEM was prepared using the CG model. Then, the morphology was mapped to the APPLE&P model from equilibrated CG configuration of the AEM. Simulations using atomistic non-reactive force field allowed sampling of local hydration structure of ionic groups, vehicular transport mechanism of anion and water, and structure equilibration of water channels in the membrane. Subsequently, atomistic AEM configuration was mapped to ReaxFF reactive model to investigate the Grotthuss mechanism in the hydroxide transport, as well as the AEM chemical stability and degradation mechanisms. The proposed multiscale and multiphysics modeling approach provides valuable input for the materials-by-design of novel polymeric structures for AEMs.
机译:在这项研究中,使用三种不同模型之间的多尺度偶联进行了水合阴离子交换膜(AEM)的分子动力学(MD)模拟,该膜由被季铵阳离子基团官能化的聚对苯撑氧(PPO)聚合物组成。高分辨率粗粒度(CG)模型;液体,电解质和聚合物的原子极化电位(APPLE&P);和ReaxFF。总结并比较了每种模型的优缺点。提出的多尺度耦合利用了每个模型的强度,并允许对广泛的属性进行采样,而使用任何一种建模技术都无法进行采样。在提出的组合方法中,使用CG模型制备了水合AEM的平衡形态。然后,将形态从AEM的平衡CG配置映射到APPLE&P模型。使用原子性非反应力场进行的模拟允许采样离子基团的局部水合结构,阴离子和水的车辆传输机制以及膜中水通道的结构平衡。随后,将原子AEM构型映射到ReaxFF反应模型,以研究Grotthuss在氢氧化物传输中的机理,以及AEM的化学稳定性和降解机理。所提出的多尺度和多物理场建模方法为AEM的新型聚合物结构的材料设计提供了有价值的输入。

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