首页> 外文期刊>Physical chemistry chemical physics: PCCP >pH-responsive ion transport in polyelectrolyte multilayers of poly(diallyldimethylammonium chloride) (PDADMAC) and poly(4-styrenesulfonic acid-co-maleic acid) (PSS-MA) bearing strong- and weak anionic groups
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pH-responsive ion transport in polyelectrolyte multilayers of poly(diallyldimethylammonium chloride) (PDADMAC) and poly(4-styrenesulfonic acid-co-maleic acid) (PSS-MA) bearing strong- and weak anionic groups

机译:带有强阴离子基团和弱阴离子基团的聚(二烯丙基二甲基氯化铵)(PDADMAC)和聚(4-苯乙烯磺酸-顺丁烯二酸)(PSS-MA)的聚电解质多层中的pH响应离子传输

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The layer-by-layer construction of interfacial architectures displaying stimuli-responsive control of mass transport is attracting increasing interest in materials science. In this work, we describe the creation of interfacial architectures displaying pH-dependent ionic transport properties which until now have not been observed in polyelectrolyte multilayers. We describe a novel approach to create pH-controlled ion-rectifying systems employing polyelectrolyte multilayers assembled from a copolymer containing both weakly and strongly charged pendant groups, poly(4-styrenesulfonic acid-co-maleic acid) (PSS-MA), alternately deposited with poly(diallyldimethylammonium chloride) (PDADMAC). The conceptual framework is based on the very contrasting and differential interactions of PSS and MA units with PDADMAC. In our setting, sulfonate groups play a structural role by conferring stability to the multilayer due to the strong electrostatic interactions with the polycations, while the weakly interacting MA groups remain "silent'' within the film and then act as on-demand pH-responsive units. When these multilayers are combined with a strong cationic capping layer that repels the passage of cationic probes, a pH-gateable rectified transport of anions is observed. Concomitantly, we also observed that these functional properties are significantly affected when multilayers are subjected to extensive pH cycling as a consequence of irreversible morphological changes taking place in the film. We envision that the synergy derived from combining weak and strong interactions within the same multilayer will play a key role in the construction of new interfacial architectures displaying tailorable ion transport properties.
机译:显示出对物质传输的刺激响应控制的界面体系结构的逐层构造引起了人们对材料科学的日益浓厚的兴趣。在这项工作中,我们描述了界面体系的创建,该界面体系显示了pH依赖的离子传输特性,而该特性迄今为止尚未在聚电解质多层膜中观察到。我们描述了一种新的方法来创建pH值控制的离子整流系统,该系统使用的聚电解质多层结构由含有弱和强电荷侧基,聚(4-苯乙烯磺酸-马来酸)(PSS-MA)交替沉积的共聚物组装而成用聚(二烯丙基二甲基氯化铵)(PDADMAC)。概念框架基于PSS和MA单元与PDADMAC的强烈对比和差异交互。在我们的环境中,由于与聚阳离子的强静电相互作用,磺酸盐基团通过赋予多层结构稳定性而发挥结构性作用,而弱相互作用的MA基团在薄膜内保持“沉默”,然后充当按需pH响应当这些多层与坚固的阳离子覆盖层结合使用时,可防止阳离子探针通过,可观察到pH门控的阴离子精馏迁移;同时,我们还观察到,当多层经受大量腐蚀时,这些功能特性会受到显着影响。由于膜中发生不可逆的形态变化而导致pH循环,我们设想,在同一多层结构中结合弱相互作用和强相互作用而产生的协同作用将在构建新的界面结构中发挥关键作用,该界面结构可显示可调节的离子传输性能。

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