Wang Lu, Wang Shuo, Luo Bin
Key Laboratory of Education Ministry Functional for Molecular Solids, School of Chemistry and Materials Science, Anhui Normal University, Wuhu, China.
Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, Brisbane, QLD 4072, Australia.
Dalton Trans. 2025 Aug 22. doi: 10.1039/d5dt01175b.
Doping in transition metal sulfides can effectively induce lattice distortion and introduce asymmetry, thereby lowering the energy required to overcome the rate-controlling step in the oxygen evolution reaction (OER). This work presents a simple hydrothermal synthesis strategy combined with vapor-phase vulcanization to prepare iron and manganese dual-doped NiS/NiS nanoflowers with a heterogeneous interface, directly supported on nickel foam (NF). In this approach, NF was adopted not only as a self-supporting conductive substrate but also as the nickel source for the composite. The as-prepared FeMn-NiS/NiS/NF (FM-NiS/NiS/NF) exhibits superior OER performance, requiring an ultra-low overpotential of 107 mV at a current density of 10 mA cm and demonstrating a low Tafel slope of 87.4 mV dec in an alkaline medium. Additionally, the catalyst shows a robust durability, maintaining stable activity after 48 hours of continuous operation, illustrating its high value as a highly efficient OER electrocatalyst. These vigorous OER kinetics primarily originate from the synergistic effects of the NiS/NiS heterojunction, which provides abundant electroactive sites, and the optimized electronic structure induced by Fe and Mn dual-doping. X-ray photoelectron spectroscopy analysis further reveals an increase in high-valence metal states Mn and an oxidation of Ni to Ni during the OER process, contributing significantly to the acceleration of the electrochemistry kinetics. Moreover, density functional theory simulations revealed that the cooperative interaction between bimetallic doping and sulfide matrix efficiently tuned the electronic structure and adjusted the d-band center to a more favorable position. This work demonstrates a promising strategy to design high-performance water-splitting catalysts dual-metal doping and heterointerface engineering.
过渡金属硫化物中的掺杂可以有效地诱导晶格畸变并引入不对称性,从而降低克服析氧反应(OER)中速率控制步骤所需的能量。本文提出了一种简单的水热合成策略,结合气相硫化法,制备了具有异质界面的铁和锰双掺杂NiS/NiS纳米花,直接负载在泡沫镍(NF)上。在这种方法中,NF不仅用作自支撑导电基底,还用作复合材料的镍源。所制备的FeMn-NiS/NiS/NF(FM-NiS/NiS/NF)表现出优异的OER性能,在电流密度为10 mA cm时需要107 mV的超低过电位,并且在碱性介质中显示出87.4 mV dec的低塔菲尔斜率。此外,该催化剂表现出强大的耐久性,在连续运行48小时后保持稳定的活性,说明其作为高效OER电催化剂的高价值。这些活跃的OER动力学主要源于NiS/NiS异质结的协同效应,它提供了丰富的电活性位点,以及铁和锰双掺杂诱导的优化电子结构。X射线光电子能谱分析进一步揭示了在OER过程中高价金属态Mn的增加以及Ni向Ni的氧化,这对电化学动力学的加速有显著贡献。此外,密度泛函理论模拟表明,双金属掺杂与硫化物基质之间的协同相互作用有效地调节了电子结构,并将d带中心调整到更有利的位置。这项工作展示了一种设计高性能析水催化剂的有前景的策略——双金属掺杂和异质界面工程。