Fan Weikai, Liu Chaofan, Wang Hairong, Wu Jiang, Chen Sheng, Fang Weijie, Wu Chenyu, Quan Yuyue, Wang Daolei, Qi Yongfeng
College of Energy and Mechanical Engineering, Shanghai University of Electric Power, Shanghai 200090, China.
Shanghai Special Equipment Supervision and Inspection Technology Research Institute, Shanghai 200333, China.
J Colloid Interface Sci. 2024 May 15;662:460-470. doi: 10.1016/j.jcis.2024.02.104. Epub 2024 Feb 13.
The search for highly efficient and inexpensive electrocatalysts is crucial to the advancement of environmentally friendly and sustainable energy sources. Here, adopting a one-step hydrothermal method, we have effectively fabricated a self-supported multi-metal molybdenum-based oxide (FeCoNi-MoO) on nickel foam (NF). In addition to changing the catalyst's microstructure, the introducing of Fe and Co, enhanced its active center count, improved its electronic structure, and in turn reduced the difficulty for high-valence Ni and Fe species to form, which accelerates the oxygen evolution reaction (OER) kinetics by promoting the development of the actual active materials, NiOOH and FeOOH. FeCoNi-MoO has outstanding OER performance, requiring just 204 mV overpotentials at 10 mA cm and 271 mV at 100 mA cm. Its exceptional OER kinetics at both low and high currents are indicated by a Tafel slope of 50.6 mV dec, which is attributed to the combined effect of its multi-metal composition and a higher number of active sites. Moreover, the FeCoNi-MoO electrode was operated continuously for over 48 h. Furthermore, the density functional theory (DFT) results demonstrated that the introducing of Fe and Co, which quickens the rate of electron transfer during the electrocatalytic process, improves the ability of oxygen intermediate species to adsorb, and ultimately lowers the overpotential, is responsible for the increased electrocatalytic activity of FeCoNi-MoO. This work offers hope for further developments in the sector by proposing an efficient approach for creating multi-active electrocatalysts that are stable, economical, and efficient.
寻找高效且廉价的电催化剂对于推进环境友好型和可持续能源至关重要。在此,我们采用一步水热法,在泡沫镍(NF)上有效地制备了一种自支撑的多金属钼基氧化物(FeCoNi-MoO)。除了改变催化剂的微观结构外,Fe和Co的引入增加了其活性中心数量,改善了其电子结构,进而降低了高价Ni和Fe物种形成的难度,通过促进实际活性材料NiOOH和FeOOH的生成加速了析氧反应(OER)动力学。FeCoNi-MoO具有出色的OER性能,在10 mA cm时仅需204 mV的过电位,在100 mA cm时为271 mV。其在低电流和高电流下均表现出优异的OER动力学,Tafel斜率为50.6 mV dec,这归因于其多金属组成和更多活性位点的综合作用。此外,FeCoNi-MoO电极连续运行超过48小时。此外,密度泛函理论(DFT)结果表明,Fe和Co的引入加快了电催化过程中的电子转移速率,提高了氧中间物种的吸附能力,最终降低了过电位,这是FeCoNi-MoO电催化活性增加的原因。这项工作通过提出一种创建稳定、经济且高效的多活性电催化剂的有效方法,为该领域的进一步发展带来了希望。