Huynh T B Ngoc, Kim Hyun-Jong, Eom Hui Won, Kim Myung Jun, Kwon Oh Joong
Department of Energy and Chemical Engineering and Innovation Centre for Chemical Engineering, Incheon National University, Incheon, 22012, Republic of Korea.
Surface Technology Center, Korea Institute of Industrial Technology (KITECH), Yeonsu-gu, Incheon, 21999, Republic of Korea.
Small. 2025 Aug;21(34):e2505937. doi: 10.1002/smll.202505937. Epub 2025 Jun 23.
IrMO@CMI (M = Ni, Co, Fe) electrocatalysts are explored for the oxygen evolution reaction by embedding IrMO within carbon matrix islands (CMIs) in direct contact with a titanium porous transport layer. Structural and compositional analyses reveal that incorporating transition metals not only enhances Ir particle dispersion but also modifies the morphology. The unique hierarchical structure of the IrMO@CMI electrocatalyst improves its intrinsic OER activity and durability under severe acidic conditions. Among the electrocatalysts, IrCoO@CMI demonstrates the highest intrinsic OER activity, achieving an overpotential of 233 mV at 10 mA cm, alongside a minimal charge transfer resistance of 1.57 Ω cm and a Tafel slope of 57 mV per dec. Additionally, it exhibits superior stability during both accelerated degradation testing (10k cycles) and chronopotentiometry over 200 h at 10 mA cm in a half-cell stage, with a degradation rate of 35 µV h. Furthermore, this catalyst demonstrates improved water-splitting performance in the unit cell stage, achieving a cell voltage of 1.55 V at 1 A cm while maintaining stability over 500 h at a current density of 1 A cm . These findings position IrCoO@CMI as a promising candidate for sustainable hydrogen production in proton exchange membrane water electrolysis applications, offering enhanced performance and reduced Ir consumption.
通过将IrMO嵌入与钛多孔传输层直接接触的碳基质岛(CMIs)中,探索了IrMO@CMI(M = Ni、Co、Fe)电催化剂用于析氧反应。结构和成分分析表明,掺入过渡金属不仅增强了Ir颗粒的分散性,还改变了形态。IrMO@CMI电催化剂独特的分级结构提高了其在强酸性条件下的本征析氧反应活性和耐久性。在这些电催化剂中,IrCoO@CMI表现出最高的本征析氧反应活性,在10 mA cm⁻²时过电位为233 mV,同时电荷转移电阻最小,为1.57 Ω cm²,塔菲尔斜率为每十倍57 mV。此外,在半电池阶段10 mA cm⁻²下进行加速降解测试(10000次循环)和200小时的计时电位法测试期间,它表现出优异的稳定性,降解速率为35 μV h⁻¹。此外,这种催化剂在单电池阶段表现出改进的水分解性能,在1 A cm⁻²时电池电压为1.55 V,同时在1 A cm⁻²的电流密度下保持500小时以上的稳定性。这些发现使IrCoO@CMI成为质子交换膜水电解应用中可持续制氢的有前途的候选材料,具有更高的性能和更低的Ir消耗。