Abstract
Strain modulation optimizes catalytic reactivity by reconfiguring geometric and electronic structures at the nanoscale. Due to their mechanical flexibility, graphitic carbon nitride (g-C3N4) nanosheets serve as an ideal support for single-atom catalysts (SACs) in the oxygen reduction reaction (ORR). In this study, density functional theory (DFT) calculations are employed to systematically investigate the effects of biaxial and uniaxial strains on the structural stability and ORR activity of Fe-decorated g-C3N4. The nanostructured g-C3N4 substrate adopts a buckled geometry that dictates the electronic environment of the Fe–Nx active centers. Our results demonstrate that compressive strain regulates the Fe-site electronic configuration by enhancing π back-donation to O2, which promotes initial activation but overstabilizes the *OH intermediate. This shifts the potential-determining step (PDS) to the *OH desorption, limiting the overall kinetics. In contrast, moderate tensile strain (+4%) optimizes the reaction energetics by moderately weakening the *OH binding, reducing the ORR overpotential by 0.2–0.3 V. These findings highlight the coupling between substrate deformation, electronic states, and catalytic intermediates, demonstrating that mechanical strain engineering is an effective approach for designing high-performance nonprecious metal nanomaterials for the ORR.
| Original language | English |
|---|---|
| Pages (from-to) | 8764-8770 |
| Number of pages | 7 |
| Journal | ACS Applied Nano Materials |
| Volume | 9 |
| Issue number | 19 |
| DOIs | |
| Publication status | Published - 2026 May 15 |
Keywords
- density functional theory
- graphitic carbon nitride
- oxygen reduction reaction
- single-atom catalyst
- strain modulation
ASJC Scopus subject areas
- General Materials Science
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