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Updated: Apr 25, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Synergistic Ni-P co-doping in pyrite FeS2 for efficient electrocatalytic nitrate reduction via a dissociative
Haitao Sun1, Jixuan Li1, Xueshi Song1
1Key Laboratory for Photonic and Electronic Bandgap Materials, Ministry of Education, School of Physics and Electronic Engineering, Harbin Normal University, Harbin, 150025, P. R. China. songxueshihsd@163.com.
Abstract:
The electrocatalytic nitrate reduction reaction (NO3RR) represents a sustainable strategy for wastewater remediation and green ammonia production; however, its efficiency is frequently constrained by sluggish N-O bond cleavage and competitive hydrogen evolution (HER). Inspired by natural multi-site enzymatic cascades in nature, we propose a rational co-doping strategy to modulate the dual active sites of pyrite FeS2 for enhanced NO3RR performance. Through comprehensive density functional theory (DFT) computations, we demonstrate that the synergistic integration of Ni and P dopants significantly modulates the electronic structure of the Fe-S motifs, facilitating a highly efficient dissociative mechanism. Our results reveal that the Ni-P/FeS2 catalyst exhibits a low limiting potential of -0.28 V. Detailed electronic analysis underscores a synergistic Ni-d/P-p 'push-pull' effect that triggers barrierless N-O bond cleavage, fundamentally optimizing the kinetic landscape for the NO3--to-NH3 conversion. Furthermore, computed formation energies and ab initio molecular dynamics simulations confirm the robust thermodynamic and structural stability of Ni-P/FeS2, suggesting its feasibility for experimental realization. Beyond identifying a promising NO3RR catalyst, this work elucidates the fundamental role of metal-nonmetal synergy in governing complex multi-electron transfer processes, offering a robust paradigm for the rational design of advanced dual-site catalysts.
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