Resolving Active-Site Heterogeneity in Fe–N–C Catalysts by Integrated Multimodal Spectroscopy and Simulation
Jiayi Xu, Prajay Patel, Matthew E. Sweers, Esen E. Alp, Hoon Taek Chung, Piotr Zelenay, A. Jeremy Kropf, Deborah Myers, Cong LiuAbstract
Fe–N–C single-atom catalysts are among the most promising electrocatalysts for the oxygen reduction reaction (ORR), yet their atomic-scale structure remains difficult to resolve because high-temperature synthesis generates a diverse population of Fe sites. In this work, we combine Fe K-edge X-ray absorption spectroscopy (XAS), 57Fe Mössbauer spectroscopy, density functional theory (DFT), and spectroscopy simulations to elucidate Fe-site structures before and after air exposure. The as-pyrolyzed catalyst is best described by a heterogeneous distribution of FeN4 sites, dominated by a defect-associated pyrrolic motif with third-shell nitrogen coordination and a smaller pyridinic contribution. We show that coordination beyond the first shell strongly influences Fe–N bond distances, local symmetry, and XANES features. Air exposure converts square-planar Fe(II)-like sites into oxidized, axially coordinated Fe(III)-like species. Overall, this multimodal structure–spectroscopy framework provides a robust strategy for resolving active-site heterogeneity in complex single-atom catalysts.