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Hydrogen bond mediated oxidation enables sustained oxygen evolution at industrial current densities
Yijie Zhang1, Yixiao Zou2, Yuan Gao1
1College of Chemistry and Chemical Engineering, Taiyuan University of Technology, Taiyuan, Shanxi, China.
Abstract:
Stable and efficient non-precious electrocatalysts are crucial for the industrialization of anion exchange membrane water electrolysis as a green hydrogen production technology. Here, we show a synergistic dual-anion engineering combining Se doping and surface [B(OH)4]- modification to overcome the activity-stability trade-off in NiFe (oxy)hydroxide. Se-doping optimizes the O 2p band center and enhances lattice oxygen participation, while [B(OH)4]- forms an interfacial hydrogen-bond network for efficient proton transfer and intermediate stabilization. This triggers a hydrogen bond-mediated oxidation mechanism, in which accelerated OH⁻ diffusion replenishes lattice oxygen dynamically while preventing vacancy accumulation. The resulting NiFe(Se)OH-BO catalyst can achieve a 177 mV overpotential at 10 mA cm-2. When serving as the anode for anion exchange membrane water electrolysis, it operates stably for >3400 h at 1 A cm-2 (70 °C), reducing hydrogen production costs to $2.28 per kg H2-surpassing the European Commission's 2030 target and demonstrating compelling potential for a sustainable hydrogen economy.