首页> 外文期刊>Journal of chemical theory and computation: JCTC >High-Resolution Coarse-Grained Model of Hydrated Anion-Exchange Membranes that Accounts for Hydrophobic and Ionic Interactions through Short-Ranged Potentials
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High-Resolution Coarse-Grained Model of Hydrated Anion-Exchange Membranes that Accounts for Hydrophobic and Ionic Interactions through Short-Ranged Potentials

机译:通过短远程电位占疏水和离子相互作用的水合阴离子交换膜的高分辨率粗粒模型

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Molecular simulations provide a versatile tool to study the structure, anion conductivity, and stability of anion-exchange membrane (AEM) materials and can provide a fundamental understanding of the relation between structure and property of membranes that is key for their use in fuel cells and other applications. The quest for large spatial and temporal scales required to model the multiscale structure and transport processes in the polymer electrolyte membranes, however, cannot be met with fully atomistic models, and the available coarse-grained (CG) models suffer from several challenges associated with their low-resolution. Here, we develop a high-resolution CG force field for hydrated polyphenylene oxide/trimethylamine chloride (PPO/TMACl) membranes compatible with the mW water model using a hierarchical parametrization approach based on Uncertainty Quantification and reference atomistic simulations modeled with the Generalized Amber Force Field (GAFF) and TIP4P/2005 water. The parametrization weighs multiple properties, including coordination numbers, radial distribution functions (RDFs), self-diffusion coefficients of water and ions, relative vapor pressure of water in the solution, hydration enthalpy of the tetramethylammonium chloride (TMACl) salt, and cohesive energy of its aqueous solutions. We analyze the interdependence between properties and address how to compromise between the accuracies of the properties to achieve an overall best representability. Our optimized CG model FFcomp quantitatively reproduces the diffusivities and RDFs of the reference atomistic model and qualitatively reproduces the experimental relative vapor pressure of water in solutions of tetramethylammonium chloride. These properties are of utmost relevance for the design and operation of fuel cell membranes. To our knowledge, this is the first CG model that includes explicitly each water and ion and accounts for hydrophobic, ionic, and intramolecular interactions explicitly parametrized to reproduce multiple properties of interest for hydrated polyelectrolyte membranes. The CG model of hydrated PPO/TMACl water is about 100 times faster than the reference atomistic GAFF-TIP4P/2005 model. The strategy implemented here can be used in the parametrization of CG models for other substances, such as biomolecular systems and membranes for desalination, water purification, and redox flow batteries. We anticipate that the large spatial and temporal simulations made possible by the CG model will advance the quest for anion-exchange membranes with improved transport and mechanical properties.
机译:分子模拟为研究阴离子交换膜(AEM)材料的结构、阴离子导电性和稳定性提供了一个通用工具,并能从根本上理解膜的结构和性能之间的关系,这对其在燃料电池和其他应用中的应用至关重要。然而,对聚合物电解质膜中的多尺度结构和传输过程建模所需的大空间和时间尺度的追求,不能用完全原子模型来满足,可用的粗粒度(CG)模型面临着与低分辨率相关的若干挑战。在这里,我们使用基于不确定性量化和参考原子模拟的分层参数化方法,开发了与mW水模型兼容的水合聚苯醚/三甲胺氯化物(PPO/TMACl)膜的高分辨率CG力场,该方法采用广义琥珀色力场(GAFF)和TIP4P/2005水建模。参数化衡量了多个属性,包括配位数、径向分布函数(RDF)、水和离子的自扩散系数、水在溶液中的相对蒸汽压、四甲基氯化铵(TMACl)盐的水合焓及其水溶液的内聚能。我们分析了属性之间的相互依赖关系,并讨论了如何在属性的准确性之间进行折衷,以实现总体上的最佳代表性。我们优化的CG模型FFcomp定量地再现了参考原子模型的扩散率和RDF,定性地再现了四甲基氯化铵溶液中水的实验相对蒸气压。这些特性对燃料电池膜的设计和运行至关重要。据我们所知,这是第一个CG模型,它明确地包含了每一种水和离子,并解释了疏水、离子和分子内的相互作用,明确地参数化,以重现水合聚电解质膜的多种特性。水合PPO/TMACl水的CG模型比参考原子GAFF-TIP4P/2005模型快约100倍。此处实施的策略可用于其他物质CG模型的参数化,例如用于脱盐、水净化和氧化还原流电池的生物分子系统和膜。我们预计,CG模型可能进行的大型空间和时间模拟将推动对具有改进的传输和机械性能的阴离子交换膜的探索。

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