Tackling the global energy crisis and environmental pollution driven by rising fossil fuel consumption requires the development of renewable, green, and continuous energy sources. Hydrogen (H2) production via renewable energy-powered water electrolysis offers a sustainable solution, where development of efficient, cost-effective electrocatalysts is critical. This article reports nickel foam (NF) -supported relatively unexplored trimetallic Cu–Co–Mo oxide (CuCoMo-O/NF) costing 0. 051 cm–2, as a trifunctional electrocatalyst for the methanol oxidation reaction (MOR), oxygen evolution reaction (OER), and hydrogen evolution reaction (HER). The CuCoMo-O/NF catalyst demonstrates superior electrocatalytic activity compared to its monometallic and bimetallic counterparts (Co3O4/NF, CoMo-O/NF, and CuCo-O/NF). CuCoMo-O/NF exhibits 244 mV (OER) and 234 mV (HER) overpotential at 50 mA cm–2, where MOR required a 74 mV lower potential than the OER. The fabricated conventional CuCoMo-O/NF (±) electrolyzer operates at 1. 803 V to deliver 100 mA cm–2, significantly reduced to 1. 623 V in the MOR-integrated hybrid electrolyzer, which simultaneously valorizes methanol to formate ions in a greener way while boosting H2 production. Both electrolyzers display remarkable long-term stability over 100 h. The Faradaic efficiency (FE) of the electrolyzers is ∼99. 4%, with an electricity cost for H2 production of 1. 25 kg–1 for the conventional electrolyzer, which has been further reduced to 0. 95 kg–1 using the hybrid CuCoMo-O/NF (±) electrolyzer, meeting the U. S. Department of Energy target (<2 kg–1). These findings demonstrate the practical applicability of CuCoMo-O/NF for scalable and sustainable H2 production.
Borah et al. (Thu,) studied this question.
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