琼脂糖水凝胶界面的质量传递性质及自然对流对伏安法的影响

IF 2.2 4区 工程技术 Q3 ELECTROCHEMISTRY Journal of electrochemical science and technology Pub Date : 2022-05-12 DOI:10.33961/jecst.2022.00129
Byung-Kwon Kim, Kyungsoon Park
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引用次数: 4

摘要

以二茂铁化合物为氧化还原探针,对固体电解质琼脂糖水凝胶的传输特性和自然对流效应进行了伏安法研究。为了证实溶质在琼脂糖界面上的扩散特性,根据琼脂糖水凝胶的浓度,通过循环伏安法(CV)测定了二茂铁甲醇在琼脂糖水凝胶中的扩散系数(D)。虽然琼脂糖界面上的D值小于本体溶液中的D值,但与扫描速率相关的峰值电流的平方根表明,溶质在琼脂糖表面上的质量传输行为显示出可忽略的对流或迁移效应。为了证实凝胶界面上自然对流的减少,分别在溶液相中和琼脂糖表面上进行了扫描速率相关的CV。凝胶界面的慢扫描伏安法可以在没有任何复杂设备的情况下确定低至0.3mV/s的扫描速率的常规且可重复的扩散控制电流。
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Mass Transport Properties and Influence of Natural Convection for Voltammetry at the Agarose Hydrogel Interface
Agarose hydrogel, a solid electrolyte, was investigated voltammetrically in terms of transport properties and natural convection effects using a ferrocenyl compound as a redox probe. To confirm the diffusion properties of solute on the agarose interface, the diffusion coefficients (D) of ferrocenemethanol in agarose hydrogel were determined by cyclic voltammetry (CV) according to the concentration of agarose hydrogel. While the value of D on the agarose interface is smaller than that in the bulk solution, the square root of the scan rate-dependent peak current reveals that the mass transport behavior of the solute on the agarose surface shows negligible convection or migration effects. In order to confirm the reduced natural convection on the gel interface, scan rate-dependent CV was performed in the solution phase and on the agarose surface, respectively. Slow scan voltammetry at the gel interface can determine a conventional and reproducible diffusion-controlled current down to a scan rate of 0.3 mV/s without any complicated equipment.
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来源期刊
CiteScore
6.30
自引率
8.10%
发文量
44
期刊介绍: Covering fields: - Batteries and Energy Storage - Biological Electrochemistry - Corrosion Science and Technology - Electroanalytical Chemistry and Sensor Technology - Electrocatalysis - Electrochemical Capacitors & Supercapcitors - Electrochemical Engineering - Electrodeposition and Surface Treatment - Environmental Science and Technology - Fuel Cells - Material Electrochemistry - Molecular Electrochemistry and Organic Electrochemistry - Physical Electrochemistry - Solar Energy Conversion and Photoelectrochemistry
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