1-正丁基-3-甲基氯化咪唑离子液体中脉冲电解合成银纳米粒子

IF 2.2 4区 工程技术 Q3 ELECTROCHEMISTRY Journal of electrochemical science and technology Pub Date : 2022-10-12 DOI:10.33961/jecst.2022.00570
J. Jang, Jihee Kim, Churl-Kyoung Lee, K. Kwon
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引用次数: 0

摘要

离子液体由于其高热稳定性和化学稳定性、相对高的离子电导率和宽的电化学窗口,被认为是电化学合成金属的一种有前途的替代溶剂。特别地,它们的宽电化学窗口使得能够在没有电解质的任何副反应(例如析氢)的情况下电沉积金属。银的电沉积是在1-正丁基-3-甲基氯化咪唑([C4mim]Cl)离子液体系统中进行的,银源为AgCl。这项研究是首次尝试在不使用[C4mim]Cl以外的共溶剂的情况下电沉积银纳米颗粒。脉冲电解用于合成银纳米颗粒,通过改变施加电势从-3.0V到-4.5V(相对于Pt准参比电极)和脉冲持续时间从0.1s到0.7s。相应地,获得了尺寸范围从15nm到~100nm的银纳米颗粒。在脉冲电解中,无论基板类型如何,包括铝、不锈钢和复写纸,都证明了银纳米颗粒的成功制备。最后,通过金黄色葡萄球菌的抗菌试验证实了电沉积银纳米粒子的抗菌性能。
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Synthesis of Silver Nanoparticles using Pulse Electrolysis in 1-n-butyl-3-methylimidazolium Chloride Ionic Liquid
Ionic liquids are considered as a promising, alternative solvent for the electrochemical synthesis of metals because of their high thermal and chemical stability, relatively high ionic conductivity, and wide electrochemical window. In particular, their wide electrochemical window enables the electrodeposition of metals without any side reaction of electrolytes such as hydrogen evolution. The electrodeposition of silver is conducted in 1-n-butyl-3-methylimidazolium chloride ([C4mim]Cl) ionic liquid system with a silver source of AgCl. This study is the first attempt to electrodeposit silver nanoparticles without using co-solvents other than [C4mim]Cl. Pulse electrolysis is employed for the synthesis of silver nanoparticles by varying applied potentials from -3.0 V to -4.5 V ( vs. Pt-quasi reference electrode) and pulse duration from 0.1 s to 0.7 s. Accord-ingly, the silver nanoparticles whose size ranges from 15 nm to ~100 nm are obtained. The successful preparation of silver nanoparticles is demonstrated regardless of the kinds of substrate including aluminum, stainless steel, and carbon paper in the pulse electrolysis. Finally, the antimicrobial property of electrodeposited silver nanoparticles is confirmed by an antimicrobial test using Staphylococcus aureus.
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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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