Aladeemy Saba A, Arunachalam Prabhakarn, Amer Mabrook S, Al-Mayouf Abdullah M
Electrochemical Sciences Research Chair (ESRC), Chemistry Department, King Saud University P.O Box 2455 Riyadh 11451 Saudi Arabia
RSC Adv. 2025 Jan 3;15(1):14-25. doi: 10.1039/d4ra07418a. eCollection 2025 Jan 2.
Developing high-efficiency, cost-effective, and long-term stable nanostructured catalysts for electrocatalytic water splitting remains one of the most challenging aspects of hydrogen fuel production. Urea electrooxidation reaction (UOR) can produce hydrogen energy from nitrogen-rich wastewater, making it a more sustainable and cheaper source of hydrogen. In this study, we have developed Ni/NiS hybrid structures with cauliflower-like morphology on carbon paper electrodes through the application of dimethylsulfoxide solvents. These electrodes serve as highly efficient and long-lasting electrocatalysts for the hydrogen evolution reactions (HER) and UOR. In particular, the Ni/NiS cauliflower-like morphology is confirmed X-ray photoelectron spectroscopy (XPS) and scanning electron microscopy (SEM). Furthermore, electrochemical characterization of the Ni/NiS@CP catalyst showed a 1.35 V onset potential RHE for the UOR in 1.0 M KOH and superior electrocatalytic performance compared to bare Ni@CP. Additionally, the Ni/NiS@CP catalyst also exhibits a low overpotential of 125 mV at 10 mA cm for HER in 0.5 M HSO with excellent durability, which is apparently lower than bare Ni@/CP (397 mV). Based on the results obtained, the synthesized Ni/NiS@CP catalyst may be a promising electrode candidate for handling urea-rich wastewater and generating hydrogen.
开发用于电催化水分解的高效、经济高效且长期稳定的纳米结构催化剂仍然是氢燃料生产中最具挑战性的方面之一。尿素电氧化反应(UOR)可以从富氮废水中产生氢能,使其成为一种更可持续、更廉价的氢源。在本研究中,我们通过应用二甲基亚砜溶剂在碳纸电极上制备了具有菜花状形态的Ni/NiS混合结构。这些电极可作为析氢反应(HER)和UOR的高效且持久的电催化剂。特别是,通过X射线光电子能谱(XPS)和扫描电子显微镜(SEM)证实了Ni/NiS的菜花状形态。此外,Ni/NiS@CP催化剂的电化学表征显示,在1.0 M KOH中UOR的起始电位为1.35 V(相对于可逆氢电极,RHE),并且与裸Ni@CP相比具有优异的电催化性能。此外,Ni/NiS@CP催化剂在0.5 M H₂SO₄中HER的电流密度为10 mA cm⁻²时也表现出125 mV的低过电位,并且具有出色的耐久性,这明显低于裸Ni@/CP(397 mV)。基于所获得的结果,合成的Ni/NiS@CP催化剂可能是处理富含尿素的废水并产生氢气的有前景的电极候选材料。