Mo Zuohong, Ma Zhihui, Ran Yinjun, Wang Yage, Li Tianhao, Sun Wei, Hu Weihua
School of Materials and Energy, Southwest University, Chongqing Key Laboratory of Battery Materials and Technology, Chongqing, 400715, P. R. China.
Key Laboratory of Laser Technology and Optoelectronic Functional Materials of Hainan Province, Key Laboratory of Functional Materials and Photoelectrochemistry of Haikou, College of Chemistry and Chemical Engineering, Hainan Normal University, Haikou, 571158, P. R. China.
ChemSusChem. 2025 Feb 1;18(3):e202401607. doi: 10.1002/cssc.202401607. Epub 2024 Oct 28.
Electrochemical nitrate reduction to ammonia (NRA) is a promising sustainable way to synthesize ammonia (NH) from nitrate (NO ) contaminants. Cu-based electrocatalysts are frequently utilized for NRA due to their strong NO adsorption and de-oxygenation ability. However, this kind of catalyst usually possesses the weak water dissociation ability, resulting in insufficient proton supply in alkaline media to retard the following hydrogenation step of O-containing intermediates (*NO, typically NO ) to target NH. Herein, NiO-incorporated Cu/CuO nanowires grown on nickel foam (p-CuNi@NF, p refers to plasma treatment) were synthesized via hydrothermal growth and subsequent O plasma treatment for efficient NRA electrocatalysis. On this p-CuNi@NF catalyst, NiO is able to accelerate the hydrogenation step by promoting the water dissociation to provide protons, ultimately facilitating efficient NRA. p-CuNi@NF exhibits excellent NH selectivity and yield in a wide potential range and reaches a high Faradaic efficiency (FE) of 97.5 % and a yield (Y) of 470 μmol h cm at -0.6 V, both of which largely surpass the Cu/CuO catalyst.
电化学硝酸盐还原制氨(NRA)是一种很有前景的从硝酸盐(NO )污染物中合成氨(NH)的可持续方法。铜基电催化剂因其对NO 的强吸附和脱氧能力而经常用于NRA。然而,这类催化剂通常具有较弱的水离解能力,导致在碱性介质中质子供应不足,从而阻碍了含氧化合物中间体(*NO,通常为NO )加氢生成目标产物NH 的后续步骤。在此,通过水热生长和随后的氧等离子体处理合成了生长在泡沫镍上的掺NiO的Cu/CuO纳米线(p-CuNi@NF,p表示等离子体处理),用于高效的NRA电催化。在这种p-CuNi@NF催化剂上,NiO能够通过促进水离解提供质子来加速加氢步骤,最终促进高效的NRA。p-CuNi@NF在很宽的电位范围内表现出优异的NH 选择性和产率,在-0.6 V时达到97.5%的高法拉第效率(FE)和470 μmol h cm 的产率(Y),这两者都大大超过了Cu/CuO催化剂。