Facile Nitridation of a MoNi Alloy with an Optimized Electronic Structure toward Boosted Overall Hydrazine Splitting
Benjing Li1, Yajing Zhang2, Xinghai Li1
1School of Chemistry, State Key Laboratory of Fine Chemicals, Dalian Key Laboratory of Smart Chemistry, Frontier Science Center for Smart Materials, Dalian University of Technology, Dalian 116024, China.
Abstract:
Hydrazine oxidation reaction (HzOR)-assisted hydrogen production enables energy efficiency and performance improvement by avoiding a sluggish oxygen evolution reaction, yet its catalyst development is hindered by complex synthesis and limited external field integration. Herein, we report a cost-effective and scalable approach to construct nitride electrodes directly from a commercial MoNi alloy foam via one-step ammonia nitridation. The optimized catalysts exhibited a tailored electronic structure derived from d-electron complementation between Ni and Mo, promoting hydrazine dehydrogenation kinetics and hydrogen adsorption. Under rational design, the potentials could reach as low as -0.24 V for the HER and 0.046 V for the HzOR at a high current density exceeding 600 mA cm-2 in an alkaline electrolyte, which is comparable to the state-of-the-art materials in references. Furthermore, full-cell operation demonstrated cell voltages as low as 0.01 and 0.109 V at 10 and 100 mA cm-2, respectively. Thanks to solar light assistance, there was an 87.4% energy consumption reduction for the HER at 10 mA cm-2 and a 78.1% reduction for the HzOR at 50 mA cm-2. We provided a viable route in this work to engineer alloy-derived nitride electrocatalysts integrated with light-field enhancement for energy-saving hydrogen production.
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