Operando-regulated charge-transfer kinetics in biomass-derived Ni–Mo/N-doped graphitic carbon for hydrazine-assisted seawater electrolysis

Hydrazine-assisted electrolysis provides an energy-efficient route for hydrogen production by replacing the sluggish oxygen evolution reaction and mitigating chloride-induced parasitic reactions in seawater. Herein, we develop a bimetallic nickel–molybdenum incorporated nitrogen-doped graphitic carbon (NiMo@NGC) electrocatalyst as a non-noble platform for alkaline hydrogen evolution coupled with hydrazine oxidation in seawater. Hydrazine is employed as a kinetic probe to decouple anodic charge-transfer processes from oxygen evolution pathways. Operando electrochemical impedance spectroscopy reveals a transition to charge-transfer-dominated anodic kinetics driven by Ni–Mo interaction within the conductive N-doped carbon matrix. As a result, NiMo@NGC exhibits low charge-transfer resistance, and stable performance under alkaline and seawater conditions. A symmetric NiMo@NGC||NiMo@NGC electrolyzer delivers a low cell voltage of 0.45 V for hydrazine-assisted seawater electrolysis and maintains stable operation. Post-electrolysis analyses confirm preserved framework integrity with mild surface reconstruction. This work establishes an operando-guided strategy for designing non-noble electrocatalysts for low-energy, seawater-tolerant hydrogen production.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-09-16
DOI
https://doi.org/10.1016/j.ijhydene.2026.157569
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
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article

Operando-regulated charge-transfer kinetics in biomass-derived Ni–Mo/N-doped graphitic carbon for hydrazine-assisted seawater electrolysis

Rajathsing Kalusulingam, Martin Muhler, Krishnan Ravi, Sreedhar Gundekari et al.
International Journal of Hydrogen Energy
Electrocatalysts for Energy Conversion
article

Operando-regulated charge-transfer kinetics in biomass-derived Ni–Mo/N-doped graphitic carbon for hydrazine-assisted seawater electrolysis

Rajathsing Kalusulingam, Martin Muhler, Krishnan Ravi, Sreedhar Gundekari, Selvam Mathi, Keiko Sasaki, Jun Ho Shim
article en

Abstract

Hydrazine-assisted electrolysis provides an energy-efficient route for hydrogen production by replacing the sluggish oxygen evolution reaction and mitigating chloride-induced parasitic reactions in seawater. Herein, we develop a bimetallic nickel–molybdenum incorporated nitrogen-doped graphitic carbon (NiMo@NGC) electrocatalyst as a non-noble platform for alkaline hydrogen evolution coupled with hydrazine oxidation in seawater. Hydrazine is employed as a kinetic probe to decouple anodic charge-transfer processes from oxygen evolution pathways. Operando electrochemical impedance spectroscopy reveals a transition to charge-transfer-dominated anodic kinetics driven by Ni–Mo interaction within the conductive N-doped carbon matrix. As a result, NiMo@NGC exhibits low charge-transfer resistance, and stable performance under alkaline and seawater conditions. A symmetric NiMo@NGC||NiMo@NGC electrolyzer delivers a low cell voltage of 0.45 V for hydrazine-assisted seawater electrolysis and maintains stable operation. Post-electrolysis analyses confirm preserved framework integrity with mild surface reconstruction. This work establishes an operando-guided strategy for designing non-noble electrocatalysts for low-energy, seawater-tolerant hydrogen production.

International Journal of Hydrogen EnergyVol. 275
Waseda University (JP), Hunan University (CN), Koneru Lakshmaiah Education Foundation (IN), Ruhr University Bochum (DE), Daegu University (KR)
National Research Foundation of Korea, Japan Society for the Promotion of Science
Life below water
Openalex Percentile: Top 29%
Electrocatalysts for Energy Conversion
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