Gaoming Jin, Jinfeng Zheng, Cheng Lai, Tianxin He, Dan Liu, Huigang Wang, Yun Tong
Advancing sustainable hydrogen production is pivotal to achieving global carbon neutrality, and thermodynamically favorable ethylene glycol oxidation (EGOR)-assisted water electrolysis provides an energy-saving pathway. Herein, we develop a hierarchical phosphorus-modified Co nanosheet array supported on electrochemically reduced Cu nanowire foam (P-Co@Cu/CF) for ampere-grade paired electrolysis. The three-dimensional Cu scaffold affords a porous and conductive framework that maximizes active-site exposure and accelerates mass/electron transport, while P incorporation tailors the electronic structure of Co, optimizing intermediate adsorption and promoting rapid catalytic kinetics. Benefiting from these synergistic effects, the catalyst demonstrates outstanding performance at ampere-grade current densities for both the EGOR and HER. In a two-electrode HER∥EGOR system, current densities of 1 A cm −2 are delivered at cell voltages of 1.68 V, while maintaining > 90% Faradaic efficiency for H 2 and an impressive formate yield rate of 9.81 mmol h −1 cm −2 at 1 A cm −2, with sustaining continuous stable electrolysis for over 100 h at 800 mA cm −2 . Operando spectroscopy results and electrochemical analyses reveal that surface-reconstructed active species drive EG oxidation via a coupled electrochemical–chemical pathway involving glyoxal intermediates.