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Nanoporous gold microelectrode prepared from potential modulated electrochemical alloying-dealloying in ionic liquid

机译:离子液体中电位调制电化学合金化-脱金属制备的纳米多孔金微电极

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摘要

Nanoporous gold (NPG) microelectrodes with high surface area and open pore network were successfully prepared by applying modulated potential to a polycrystalline Au-disk microelectrode in ionic liquid electrolyte containing ZnCl_2 at elevated temperature. During cathodic process, Zn is electrodeposited and interacted with Au microdisk substrate to form a AuZn alloy phase. During subsequent anodic process, Zn is selectively dissolved from the alloy phase, leading to the formation of a NPG layer which can grow with repetitive potential modulation. Scanning-electron microscope and energy dispersive X-ray microscope measurements show that the NPG microelectrodes possessing nanoporous structures can be tuned via potential modulation, and chemically contain a small amount of Zn whose presence has no obvious influence on electrochemical responses of the electrodes. Steady-state and cyclic voltammetric studies suggest that the NPG microelectrodes have high surface area and keep diffusional properties of a microelectrode. Electrochemical nitrite reduction and oxidation are studied as model reactions to demonstrate potential applications of the NPG microelectrodes in electrocatalysis and electroanalysis. These facts suggest that the potential-modulated electrochemical alloying/dealloying in ionic liquid electrolyte offers a convenient green-chemistry method for the preparation of nanoporous microelectrodes.
机译:通过在高温下在含有ZnCl_2的离子液体电解质中向多晶Au盘微电极施加调制电势,成功制备了具有高表面积和开孔网络的纳米多孔金(NPG)微电极。在阴极过程中,锌被电沉积并与金微盘基板相互作用形成金锌合金相。在随后的阳极过程中,Zn从合金相中选择性溶解,导致形成NPG层,该NPG层可以通过重复的电势调制来生长。扫描电子显微镜和能量色散X射线显微镜测量表明,具有纳米孔结构的NPG微电极可通过电势调制进行调谐,并且化学上含有少量的Zn,Zn的存在对电极的电化学响应没有明显影响。稳态和循环伏安法研究表明,NPG微电极具有较高的表面积并保持微电极的扩散特性。电化学亚硝酸盐还原和氧化作为模型反应进行了研究,以证明NPG微电极在电催化和电分析中的潜在应用。这些事实表明,离子液体电解质中的电势调制电化学合金化/脱合金为制备纳米多孔微电极提供了一种方便的绿色化学方法。

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