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碳酸丙烯酯盐溶液中增强的电渗作用。

Enhanced electro-osmosis in propylene carbonate salt solutions.

作者信息

Russell Wilfred Shelby, Siwy Zuzanna

机构信息

Department of Chemistry, University of California Irvine, Irvine, California 92697, USA.

出版信息

J Chem Phys. 2021 Apr 7;154(13):134707. doi: 10.1063/5.0044402.

Abstract

Properties of solid-liquid interfaces and surface charge characteristics mediate ionic and molecular transport through porous systems, affecting many processes such as separations. Herein, we report experiments designed to probe the electrochemical properties of solid-liquid interfaces using a model system of a single polyethylene terephthalate (PET) pore in contact with aqueous and propylene carbonate solutions of LiClO. First, the existence and polarity of surface charges were inferred from current-voltage curves recorded when a pore was placed in contact with a LiClO concentration gradient. Second, the electro-osmotic transport of uncharged polystyrene particles through the PET pore provided information on the polarity and the magnitude of the pore walls' zeta potential. Our experiments show that the PET pores become effectively positively charged when in contact with LiClO solutions in propylene carbonate, even though in aqueous LiClO, the same pores are negatively charged. Additionally, the electro-osmotic velocity of the particles revealed a significantly higher magnitude of the positive zeta potential of the pores in propylene carbonate compared to the magnitude of the negative zeta potential in water. The presented methods of probing the properties of solid-liquid interfaces are expected to be applicable to a wide variety of solid and liquid systems.

摘要

固液界面的性质和表面电荷特性介导离子和分子通过多孔系统的传输,影响着许多诸如分离等过程。在此,我们报告了一系列实验,旨在使用单个聚对苯二甲酸乙二酯(PET)孔与LiClO的水溶液和碳酸丙烯酯溶液接触的模型系统来探究固液界面的电化学性质。首先,当一个孔与LiClO浓度梯度接触时,通过记录电流 - 电压曲线推断表面电荷的存在和极性。其次,不带电的聚苯乙烯颗粒通过PET孔的电渗传输提供了有关孔壁zeta电位的极性和大小的信息。我们的实验表明,当与碳酸丙烯酯中的LiClO溶液接触时,PET孔有效地带正电,尽管在LiClO水溶液中,相同的孔带负电。此外,与水中负zeta电位的大小相比,颗粒的电渗速度显示出碳酸丙烯酯中孔的正zeta电位的大小明显更高。所提出的探测固液界面性质的方法有望适用于各种各样的固体和液体系统。

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