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首页> 外文期刊>Electrochimica Acta >Proton dissociation and transfer in proton exchange membrane ionomers with multiple and distinct pendant acid groups: An ab initio study
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Proton dissociation and transfer in proton exchange membrane ionomers with multiple and distinct pendant acid groups: An ab initio study

机译:具有多个不同的侧基酸基的质子交换膜离聚物中的质子解离和转移:从头算研究

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The role of the separation of the protogenic groups and side chain chemistry on proton dissociation and the energetics of proton transfer is compared on single side chain fragments of 3M multi acid side chain (MASC) ionomers. Three ionomers were considered each containing a bis(sulfonyl imide) group and a sulfonic acid group with structural and chemical differences mediating protogenic group separation: two structural isomers with protogenic group separation determined by the location of the sulfonic acid group on an aromatic ring (side chains: -O(CF_2)_4SO_2(NH)-SO_2C_6H_4SO_3H) with the sulfonic acid group located in either the meta or the ortho position) and a perfluorinated ionomer (PFIA) with protogenic groups separated by-CF_2-groups (side chain: -O(CF_2)_4SO_2(NH)SO_2(CF_2)_3SO_3H). Optimized (B3LYP/6-311G~(**)) geometries on isolated fragments revealed that differences in side chain chemistry and proximity of the protogenic groups resulted in charge delocalization effects that facilitated proton dissociation at low hydration levels. Specifically, direct hydrogen bonding between the acid groups in the ortho bis acid and electron withdrawing - CF_2 - groups in PFIA allowed for first proton dissociation at a lower hydration than the meta bis acid which lacked these effects. However, the tightly held intramolecular hydrogen bond in the ortho bis acid promoted interactions between water molecules and precluded dissociation of the second proton which required more water molecules to occur than the other MASC ionomers with more widely spread distribution of charge and hydrogen bonding. This was also realized through potential energy surface scans of proton transfer for second proton dissociation where the energetic penalty associated with proton transfer was found to be considerably higher in the ortho bis acid than the other MASC ionomers. The calculations reveal that the electron withdrawing - CF_2 - units between protogenic groups in the PFIA not only promote proton dissociation but also do not sterically fix the protogenic group separation, as with the aromatic-based MASC ionomers, allowing for the development of a hydrogen bond network that readily adjusts for the transfer of charge at low hydration levels.
机译:比较了3M多酸侧链(MASC)离聚物的单侧链片段上质子基团的分离和侧链化学对质子解离和质子转移能的作用。认为三种离聚物包含双(磺酰酰亚胺)基团和磺酸基团,其结构和化学差异介导质子生成基团的分离:两种具有质子生成基团分离的结构异构体,其磺酸基在芳环上的位置决定(侧面链:-O(CF_2)_4SO_2(NH)-SO_2C_6H_4SO_3H)的磺酸基位于间位或邻位)和全氟离聚物(PFIA),其质子基被-CF_2-基团隔开(侧链:- O(CF_2)_4SO_2(NH)SO_2(CF_2)_3SO_3H)。优化的(B3LYP / 6-311G〜(**))几何形状在分离的片段上显示,侧链化学差异和质子基团的接近度导致电荷离域效应,从而促进了低水合水平下的质子解离。具体而言,原双酸中的酸基团与PFIA中的吸电子CF_2基团之间的直接氢键键合使得第一质子解离的水合度低于没有这些作用的间双酸。但是,原双酸中分子内氢键的紧密结合促进了水分子之间的相互作用,并阻止了第二个质子的解离,与其他具有电荷和氢键分布更广泛的MASC离聚物相比,第二个质子需要更多的水分子发生。这也通过第二次质子离解的质子传递的势能面扫描得以实现,其中发现原双酸中与质子传递相关的能量损失比其他MASC离聚物高得多。计算表明,PFIA中质子基团之间的吸电子-CF_2-单元不仅促进质子解离,而且不像芳香基MASC离聚物那样在空间上固定质子基团的分离,从而促进了氢键的形成可以轻松调整低水合水平下电荷转移的网络。

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