Laboratoire Léon Brillouin, UMR CEA-CNRS 12, CEA Saclay, 91191 Gif-sur-Yvette, France.
Phys Chem Chem Phys. 2012 Oct 5;14(37):12898-904. doi: 10.1039/c2cp41859b.
Aqueous solutions of ionenes with bromide and fluoride counterions have been investigated using small angle neutron scattering for the first time. Ionenes are a class of cationic polyelectrolytes based on quaternary ammonium atoms and, considering the very low solubility of their uncharged part (hydrocarbon chain), would be formally classified as hydrophobic. Ionenes present important structural differences over previously studied polyelectrolytes: (a) charge is located on the polyelectrolyte backbone, (b) the distance between charges is regular and tunable by synthesis, (c) hydrophobicity comes from methylene groups of the backbone and not from bulky side groups. Results for Br ionenes feature a disappearance of the well-known polyelectrolyte peak beyond a given monomer concentration. Below this concentration, the position of the peak depends on the chain charge density, f(chem), and scales as f(chem)(0.30±0.04). This is an indication of a hydrophilic character of the ionene backbone. In addition, osmotic coefficients of ionene solutions resemble again other hydrophilic polyelectrolytes, featuring no unusual increase in the water activity (or a significant counterion condensation). We conclude that despite the hydrophobicity of the hydrocarbon chain separating charged centers on ionenes, these chains behave as hydrophilic. In contrast to Br ionenes, the polyelectrolyte peak remains at all concentrations studied for the single F ionene investigated. This strong counterion effect is rationalized in terms of the different hydrating properties and ion pairing in the case of bromide and fluoride ions.
首次使用小角中子散射法研究了带有溴化物和氟化物反离子的离子聚合物的水溶液。离子聚合物是一类基于季铵原子的阳离子聚电解质,考虑到其不带电部分(烃链)的溶解度非常低,从形式上属于疏水性。离子聚合物与之前研究过的聚电解质在结构上存在重要差异:(a)电荷位于聚电解质主链上,(b)电荷之间的距离是规则的,可以通过合成进行调节,(c)疏水性来自主链的亚甲基而不是来自大体积的侧基。溴离子聚合物的结果表明,在给定的单体浓度以上,聚电解质峰消失。在该浓度以下,峰的位置取决于链电荷密度 f(chem),并按 f(chem)(0.30±0.04) 缩放。这表明离子聚合物主链具有亲水性。此外,离子聚合物溶液的渗透压系数再次类似于其他亲水性聚电解质,没有出现水活度(或显著的抗衡离子凝聚)的异常增加。我们得出结论,尽管烃链将带电荷的中心分隔在离子聚合物上具有疏水性,但这些链表现出亲水性。与溴离子聚合物不同,在所研究的单个 F 离子聚合物的所有浓度下,都保留了聚电解质峰。这种强烈的抗衡离子效应可以根据溴化物和氟化物离子在水合性质和离子对方面的不同来解释。