Pyrrole Nitrogen Coordination Activates Intrinsically Catalytically Inert Mo for Oxygen Reduction Reaction
Shaojie Lu1,2, Shuwen Niu1,3, Jundong Yi4
1Key Laboratory of Carbon Materials of Zhejiang Province, College of Chemistry and Materials Engineering, Wenzhou University, Wenzhou 325000, P. R. China.
Abstract:
Electronic structure modulation is a promising approach to enhance the properties of intrinsically inert metals in an electrocatalytic oxygen reduction reaction. Herein, a molybdenum (Mo) single atom (Mo SAs) catalyst with pyrrole-rich nitrogen/oxygen double coordination has been designed and synthesized (defined as Mo SAs/N-C). The pyrrole-nitrogen (Pyrr-N) coordination was shown to effectively regulate the metal-centered electronic structure of Mo. This coordination strategy enables Mo SAs/N-C to exhibit superior catalytic activity and enhanced 4e- transfer selectivity. The electrochemical performance evaluations revealed that Mo SAs/N-C exhibit exceptional durability (with only a 2.0 mV half-wave potential decay after 5000 cycles) and resistance to methanol toxicity, outperforming commercial Pt/C (20%). Notably, as an air-cathode catalyst for zinc-air batteries, Mo SAs/N-C achieved a peak power density of 242 mW cm-2. Combining experimental results with density functional theory calculations, it was found that Pyrr-N effectively modulates the adsorption of OOH* intermediates on Mo atoms, promoting the 4e- transfer pathway and significantly enhancing the performance of the ORR. This study provides valuable insights into the role of Pyrr-N coordination in improving the performance of single-atom catalysts.
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