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Constant Potential Insights into Axially Coordinated Fe-N-C Catalysts for the Oxygen Reduction Reaction
Jianrui Zhang1, Runxi Zhu1, Yaqiong Su1
1School of Chemistry, Engineering Research Center of Energy Storage Materials and Devices of Ministry of Education, National Innovation Platform (Center) for Industry-Education Integration of Energy Storage Technology, Xi'an Jiaotong University, Xi'an 710049, PR China.
Abstract:
Axial ligand modification is an effective strategy to tune the oxygen reduction reaction (ORR) activity of FeN4 single-atom catalysts. Density functional theory calculations were performed on unmodified FeN4 and its axial ligand-modified derivatives, FeN4-L (L = F, Cl, Br, I, OH, H, SH). Neutral charge model analysis suggested that FeN4-SH and FeN4-I exhibit a high catalytic efficiency. However, comparison with the constant potential model, which allows the surface charge to self-adjust under applied voltage, revealed slight differences in limiting potentials, showing that constant potential modeling is essential for accurate evaluation. Under this model, FeN4-I emerges as the most promising catalyst, followed by FeN4-Br and FeN4-Cl. Electronic structure analysis indicates that hybridization between the Fe 3dz2 orbital and the axial ligand weakens OH* adsorption, facilitating protonation in the final ORR step and enhancing activity. These results provide guidance for improving Fe-N-C catalysts and highlight the importance of realistic surface charge modeling.
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