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Electrochemical Preparation and Post-treatment of Composite Porous Foam NiZn Alloy Electrodes with High Activity for Hydrogen Evolution

机译:高放氢活性多孔复合泡沫NiZn合金电极的电化学制备及后处理

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摘要

Composite porous foam NiZn alloy electrodes with nano pore structure were prepared by the combination of eletrodeposition, heat treatment and HCl etching. The morphology of the electrodes was examined by scanning electron microscopy (SEM). And the component of the electrodes was analyzed by Energy Dispersive Spectrum (EDS). The specific surface area and pore size of the electrode were investigated by nitrogen adsorption. The phase constituents were analyzed by X ray diffraction (XRD), and the electrocatalytic characteristics for hydrogen evolution reaction of the electrodes in 30% (mass fraction) KOH solution were investigated by cathode polarization curve. The experimental results showed that the pores were formed on surface of the foam NiZn alloy electrodes after heat treatment at 600 °C, and with the etching by 10% HCl, nano layered structure was formed on the surface of the porous skeleton. Compared with the nickel foam, the surface area of the NiZn foam alloy electrode became larger, and the nano pore structure had good catalytic activity. At current density of 200 mA·dm−2, the hydrogen evolution overpotential of the NiZn foam alloy electrodes were reduced by 222 mV and 276 mV, respectively, through heat treatment of 600 °C and etching in 10% HCl solution, which indicated that the hydrogen evolution overpotential was effectively reduced because of the composite nano porous structure, while the activity of hydrogen evolution of the electrodes was obviously improved.
机译:通过电沉积,热处理和HCl刻蚀相结合的方法制备了具有纳米孔结构的复合多孔NiZn合金多孔电极。通过扫描电子显微镜(SEM)检查电极的形态。并通过能量色散谱(EDS)分析了电极的成分。通过氮吸附研究电极的比表面积和孔尺寸。通过X射线衍射(XRD)分析相组成,并通过阴极极化曲线研究电极在30%(质量分数)KOH溶液中的氢析出反应的电催化特性。实验结果表明,经600 C热处理后,泡沫NiZn合金电极表面形成孔洞,并经10%HCl腐蚀,在多孔骨架表面形成纳米层状结构。与镍泡沫相比,NiZn泡沫合金电极的表面积更大,纳米孔结构具有良好的催化活性。在200 mA·dm −2 的电流密度下,通过600 C的热处理和10倍的蚀刻,NiZn泡沫合金电极的析氢超电势分别降低了222 mV和276 mV。 %HCl溶液,这表明由于复合纳米多孔结构有效地减少了氢的释放超电势,而电极的氢释放的活性明显提高。

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