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Gating of Hydrophobic Nanopores with Large Anions

机译:用大阴离子浇注疏水纳米孔

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Understanding ion transport in nanoporous materials is critical to a wide variety of energy and environmental technologies, ranging from ion-selective membranes, drug delivery, and biosensing, to ion batteries and supercapacitors. While nanoscale transport is often described by continuum models that rely on a point charge description for ions and a homogeneous dielectric medium for the solvent, here, we show that transport of aqueous solutions at a hydrophobic interface can be highly dependent on the size and hydration strength of the solvated ions. Specifically, measurements of ion current through single silicon nitride nanopores that contain a hydrophobic-hydrophilic junction show that transport properties are dependent not only on applied voltage but also on the type of anion. We find that in Cl- containing solutions the nanopores only conducted ionic current above a negative voltage threshold. On the other hand, introduction of large polarizable anions, such as Br- and I-, facilitated the pore wetting, making the pore conductive at all examined voltages. Molecular dynamics simulations revealed that the large anions, Br- and I-, have a weaker solvation shell compared to that of Cl- and consequently were prone to migrate from the aqueous solution to the hydrophobic surface, leading to the anion accumulation responsible for pore wetting. The results are essential for designing nanoporous systems that are selective to ions of the same charge, for realization of ion-induced wetting in hydrophobic pores, as well as for a fundamental understanding on the role of ion hydration shell on the properties of solid/liquid interfaces.
机译:了解纳米多孔材料中的离子运输对于各种能源和环境技术至关重要,从离子选择性膜,药物递送和生物传感器,离子电池和超级电容器等等。虽然纳米级运输通常由连续模型来描述,其依赖于离子的点充电描述和用于溶剂的均匀介电介质,但在此表明,在疏水界面处的水溶液运输可以高度依赖于尺寸和水化强度溶剂化离子。具体地,通过含有疏水性 - 亲水结的单个氮化硅纳米孔的离子电流的测量表明,运输特性不仅取决于施加的电压,还取决于阴离子的类型。我们发现,在Cl-的解决方案中,纳米孔仅传导负电压阈值的离子电流。另一方面,引入大的可极化阴离子,例如BR-和I-,促进了孔隙润湿,使孔导电在所有检查的电压下。分子动力学模拟显示,与CL-相比,大阴离子,BR-和I-,具有较弱的溶剂化壳,并且因此易于从水溶液中迁移到疏水表面,导致负责孔隙润湿的阴离子积累。结果对于设计具有相同电荷的离子的纳米多孔系统是必不可少的,用于实现疏水性孔中的离子诱导的润湿,以及对离子水合壳在固体/液体性质的作用的基础知识接口。

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