Surface polarization enhances ionic transport and correlations in electrolyte solutions nanoconfined by conductors†

IF 3.3 3区 化学 Q2 CHEMISTRY, PHYSICAL Faraday Discussions Pub Date : 2023-03-16 DOI:10.1039/D3FD00028A
Felipe Jiménez-Ángeles, Ali Ehlen and Monica Olvera de la Cruz
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引用次数: 1

Abstract

Layered materials that perform mixed electron and ion transport are promising for energy harvesting, water desalination, and bioinspired functionalities. These functionalities depend on the interaction between ionic and electronic charges on the surface of materials. Here we investigate ion transport by an external electric field in an electrolyte solution confined in slit-like channels formed by two surfaces separated by distances that fit only a few water layers. We study different electrolyte solutions containing monovalent, divalent, and trivalent cations, and we consider walls made of non-polarizable surfaces and conductors. We show that considering the surface polarization of the confining surfaces can result in a significant increase in ionic conduction. The ionic conductivity is increased because the conductors’ screening of electrostatic interactions enhances ionic correlations, leading to faster collective transport within the slit. While important, the change in water’s dielectric constant in confinement is not enough to explain the enhancement of ion transport in polarizable slit-like channels.

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表面极化增强了由导体纳米约束的电解质溶液中的离子传输和相关性。
进行混合电子和离子传输的层状材料有望用于能量收集、海水淡化和生物启发功能。这些功能取决于材料表面的离子电荷和电子电荷之间的相互作用。在这里,我们研究了电解质溶液中外部电场的离子传输,电解质溶液被限制在狭缝状通道中,狭缝状通道由两个表面形成,两个表面相距仅适合几个水层的距离。我们研究了含有单价、二价和三价阳离子的不同电解质溶液,并考虑了由不可极化表面和导体制成的壁。我们表明,考虑限制表面的表面极化可以导致离子传导的显著增加。离子电导率增加是因为导体对静电相互作用的屏蔽增强了离子相关性,导致狭缝内更快的集体传输。虽然很重要,但水在禁闭中介电常数的变化不足以解释离子在可极化狭缝状通道中传输的增强。
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Faraday Discussions
Faraday Discussions 化学-物理化学
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期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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