Sumbowo, Joel F. and Ihsan, Farhan Afdhalul and Fathurrahman, Fadjar and Amalia, Nadya and Akbar, Fiki T. and Yudistira, Hadi Teguh and Mobarak, Nadhratun Naiim and Dipojono, Hermawan Kresno and Wella, Sasfan Arman and Saputro, Adhitya Gandaryus (2023) Graphene-edge-supported iron dual-atom for oxygen reduction electrocatalysts. Physical Chemistry Chemical Physics, 25 (47). pp. 32637-32647. ISSN 1463-9076, 1463-9084
Full text not available from this repository. (Request a copy)Abstract
Pyrolyzed Fe–N–C-based catalysts, particularly FeN4, are reported to show enhanced catalytic activity for some chemical reactions, particularly for the oxygen reduction reaction (ORR). Here, we present a computational study to investigate another pyrolyzed Fe–N–C-based catalyst, i.e. Fe2N6, adsorbed on graphene with special emphasis on the edges of graphene nanoribbons (both zig-zag and armchair configurations) as a candidate for Fe dual-atom catalysts (Fe-DACs). Utilizing density functional theory calculations along with microkinetic simulations, we investigate the influence of graphitic edges on the stability and ORR activity of Fe-DAC active sites. Our findings indicate that the presence of graphitic edges, particularly the zig-zag configuration, significantly lowers the formation energy of Fe-DAC active sites, making them more likely to form at the edges. Furthermore, several Fe-DAC active sites at graphitic edges exhibit exceptional ORR performance, surpassing the commonly employed FeN4 active site in SAC systems and even exceeding the benchmark Pt(111) surface. Notably, the (Fe2N6)o@z1 active site demonstrates outstanding performance in both associative and dissociative mechanisms. These results highlight the role of graphitic nanopores in enhancing the catalytic behavior of Fe-DAC active sites, providing valuable insights for designing efficient non-precious metal catalysts for ORR applications.
| Item Type: | Article |
|---|---|
| Uncontrolled Keywords: | Graphene, Oxygen reduction reaction, Dual (grammatical number), Oxygen reduction, Materials science, Enhanced Data Rates for GSM Evolution, Atom (system on chip), Oxygen, Reduction (mathematics), Nanotechnology, Chemical engineering, Chemistry, Inorganic chemistry, Electrochemistry, Physical chemistry, Electrode, Computer science |
| Subjects: | Materials Sciences Chemistry |
| Depositing User: | Rizzal Rosiyan |
| Date Deposited: | 28 Sep 2026 06:47 |
| Last Modified: | 28 Sep 2026 06:47 |
| URI: | https://karya.brin.go.id/id/eprint/60586 |


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