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Simple Methods for the Preparation of Non-noble Metal Bulk-electrodes for Electrocatalytic Applications
Published on: June 21, 2017
A Self-Recycling Ruthenium Incorporated CuFe2O4 Electrocatalyst for Efficient Neutral Ammonia Electrosynthesis
Yuning Wang1,2, Wenyu Zhang1,3, Yang Yang1,3
1Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang, 110016, China.
None:
The high performance of Fe-based electrocatalyst for electrochemical nitrate reduction reaction to ammonia (eNO3 -RR-to-NH3) is currently constrained by low NH3 selectivity and insufficient stability under high current density. Hence, the incorporation of ruthenium single-atom into the CuFe2O4 (RuSA-CuFe2O4) with self-recycling property is developed. The Cu and Ru sites synergistically promote the water dissociation and facilitate the redeposition of in situ adsorbed Fe2+ (Fe2+ ad) as α-FeOOH by self-reinforcing local alkalinity at the RuSA-CuFe2O4 surface, thereby achieving high activity and robust stability for eNO3 -RR-to-NH3 process. The optimized RuSA-CuFe2O4 delivers excellent performance with a 97.9% NH3 Faradaic efficiency and 99.8% NH3 selectivity at -0.59 V versus RHE in neutral electrolyte. Remarkably, in a membrane electrode assembly (MEA) system, it achieves a large current density of 1000 mA cm-2 at 2.5 V with robust stability, accompanied by >95% NH3 selectivity, a nitrate removal rate of 4.17 mmol h-1 cm-2, and an NH3 production rate of 3.97 mmol h-1 cm-2. Theoretical calculations have demonstrated that Ru site in the RuSA-CuFe2O4 significantly enhances NO3 - adsorption and lowers the energy barrier for the potential determining step (*HNO2 → *NO). This work offers valuable insights into designing autonomous local alkalinity microenvironments with self-recycling properties on cost-effective Cu/Fe oxides.
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