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磺化狄尔斯-阿尔德聚亚苯基聚合物中微水合作用的计算研究

Computational Study of Microhydration in Sulfonated Diels-Alder Poly(phenylene) Polymers.

作者信息

Alam Todd M

机构信息

Department of Organic Material Science , Sandia National Laboratories , Albuquerque , New Mexico 87185 , United States.

出版信息

J Phys Chem A. 2018 Apr 19;122(15):3927-3938. doi: 10.1021/acs.jpca.8b01354. Epub 2018 Apr 9.

Abstract

The nature of microhydration in sulfonated Diels-Alder poly(phenylene) (SDAPP) polymer membranes is explored using ab initio and density functional theory (DFT) electronic structure calculations. The impact of the aromatic poly(phenylene) structure, including cooperative effects between multiple spatially adjacent sulfonic groups, on the hydration environment is addressed using a series of DFT B3LYP/6-311**-optimized structures for different SDAPP· nHO clusters. In addition, larger SDAPP polymer fragments, along with selected hydrophilic domain structures extracted from molecular dynamic (MD) simulations, are also evaluated using ONIOM HF/PM6 semiempirical calculations. The SDAPP clusters reveal that spontaneous proton dissociation occurs at low levels of hydration to form sulfonic-acid-associated HO contact ion pairs (CIPs), which then evolve into solvated CIPs at higher hydration levels. For multiple sulfonic acid groups located on the poly(phenylene) side chains, the hydration energies are a function of the relative acid location and backbone configuration. Variations in the phenylene backbone torsional angles allow remote sulfonic acids to adopt an optimal separation to produce an extended hydrogen bonded network of waters between the SDAPP acids groups. These calculations provide a baseline to help describe the proton transport and hydration behavior of SDAPP membranes.

摘要

利用从头算和密度泛函理论(DFT)电子结构计算方法,探究了磺化狄尔斯-阿尔德聚亚苯基(SDAPP)聚合物膜中的微水化性质。使用一系列针对不同SDAPP·nH₂O簇的DFT B3LYP/6-311**优化结构,研究了芳香族聚亚苯基结构,包括多个空间相邻磺酸基团之间的协同效应,对水化环境的影响。此外,还使用ONIOM HF/PM6半经验计算方法,评估了更大的SDAPP聚合物片段,以及从分子动力学(MD)模拟中提取的选定亲水域结构。SDAPP簇表明,在低水化水平下会发生自发质子解离,形成与磺酸相关的HO接触离子对(CIPs),然后在较高水化水平下演变为溶剂化CIPs。对于位于聚亚苯基侧链上的多个磺酸基团,水化能是相对酸位置和主链构型的函数。亚苯基主链扭转角的变化使远程磺酸能够实现最佳分离,从而在SDAPP酸基团之间形成扩展的水氢键网络。这些计算为描述SDAPP膜的质子传输和水化行为提供了基线。

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