Shen Hengfen, Du Hao, Li Peng, Wang Mei
School of Materials Science and Engineering, North University of China, Taiyuan 030051, China.
School of Energy and Power Engineering, North University of China, Taiyuan 030051, China.
Materials (Basel). 2025 Aug 1;18(15):3633. doi: 10.3390/ma18153633.
As an efficient clean energy technology, water electrolysis for hydrogen production has its efficiency limited by the sluggish oxygen evolution reaction (OER) kinetics, which drives the demand for the development of high-performance anode OER catalysts. This work constructs bimetallic (Al, Mn) co-doped nanoporous spinel CoFeO (np-CFO) with a tunable structure and composition as an OER catalyst through a simple two-step dealloying strategy. The as-formed np-CFO (Al and Mn) features a hierarchical flaky configuration; that is, there are a large number of fine nanosheets attached to the surface of a regular micron-sized flake, which not only increases the number of active sites but also enhances mass transport efficiency. Consequently, the optimized catalyst exhibits a low OER overpotential of only 320 mV at a current density of 10 mA cm, a minimal Tafel slope of 45.09 mV dec, and exceptional durability. Even under industrial conditions (6 M KOH, 60 °C), it only needs 1.83 V to achieve a current density of 500 mA cm and can maintain good stability for approximately 100 h at this high current density. Theoretical simulations indicate that Al and Mn co-doping could indeed optimize the electronic structure of CFO and thus decrease the energy barrier of OER to 1.35 eV. This work offers a practical approach towards synthesizing efficient and stable OER catalysts.
作为一种高效的清洁能源技术,水电解制氢的效率受到缓慢的析氧反应(OER)动力学的限制,这推动了对高性能阳极OER催化剂的开发需求。这项工作通过一种简单的两步脱合金策略,构建了具有可调结构和组成的双金属(Al、Mn)共掺杂纳米多孔尖晶石CoFeO(np-CFO)作为OER催化剂。所形成的np-CFO(Al和Mn)具有分级片状结构;也就是说,在规则的微米级薄片表面附着有大量细小的纳米片,这不仅增加了活性位点的数量,还提高了传质效率。因此,优化后的催化剂在电流密度为10 mA cm时表现出仅320 mV的低OER过电位、45.09 mV dec的最小塔菲尔斜率以及出色的耐久性。即使在工业条件(6 M KOH,60°C)下,达到500 mA cm的电流密度仅需1.83 V,并且在此高电流密度下可保持约100 h的良好稳定性。理论模拟表明,Al和Mn共掺杂确实可以优化CFO的电子结构,从而将OER的能垒降低至1.35 eV。这项工作为合成高效稳定的OER催化剂提供了一种实用方法。