Scattolin Enrico, Benedet Mattia, Rizzi Gian Andrea, Gasparotto Alberto, Lebedev Oleg I, Barreca Davide, Maccato Chiara
Department of Chemical Sciences, Padova University and INSTM, Via Marzolo 1, 35131, Padova, Italy.
CNR-ICMATE and INSTM, Department of Chemical Sciences, Padova University, Via Marzolo 1, 35131, Padova, Italy.
ChemSusChem. 2024 Nov 11;17(21):e202400948. doi: 10.1002/cssc.202400948. Epub 2024 Jul 9.
The development of low-cost and high-efficiency oxygen evolution reaction (OER) photoelectrocatalysts is a key requirement for H generation via solar-assisted water splitting. In this study, we report on an amenable fabrication route to carbon cloth-supported graphitic carbon nitride (gCN) nanoarchitectures, featuring a modular dispersion of NiO as co-catalyst. The synergistic interaction between gCN and NiO, along with the tailoring of their size and spatial distribution, yield very attractive OER performances and durability in freshwater splitting, of great significance for practical end-uses. The potential of gCN electrocatalysts containing ultra-dispersed, i. e. "quasi-atomic" NiO, exhibiting a higher activity than the ones containing nickel oxide nanoaggregates, is further highlighted by their activity even in real seawater. This work suggests that efficient OER catalysts can be designed through the construction of optimized interfaces between transition metal oxides and carbon nitride, yielding inexpensive and promising noble metal-free systems for real-world applications.
开发低成本、高效率的析氧反应(OER)光催化剂是通过太阳能辅助水分解制氢的关键要求。在本研究中,我们报道了一种制备碳布负载石墨相氮化碳(gCN)纳米结构的简易方法,其特点是氧化镍作为助催化剂呈模块化分散。gCN与NiO之间的协同相互作用,以及它们尺寸和空间分布的定制,在淡水分解中产生了极具吸引力的OER性能和耐久性,这对实际应用具有重要意义。含有超分散即“准原子”NiO的gCN电催化剂,即使在实际海水中也具有活性,其活性高于含有氧化镍纳米聚集体的gCN电催化剂,这进一步凸显了其潜力。这项工作表明,通过构建过渡金属氧化物与氮化碳之间的优化界面,可以设计出高效的OER催化剂,从而产生用于实际应用的廉价且有前景的无贵金属体系。