Nitrogen Vacancies in Graphitic Carbon Nitride and their Role in Heterogeneous Photocatalysis

Abstract

Graphitic carbon nitride (g-C3N4 ) is a promising metal-free photocatalyst whose activity is often enhanced by nitrogen vacancies, though their microscopic role remains unclear. Using advanced ab initio calculations with large periodic supercells, we show that long-range buckling is essential to correctly evaluate defect energetics and thus determine the stability of distinct vacancy configurations. The most stable defects are found to introduce localized in-gap states corresponding to shallow acceptor and deep donor levels. These features explain (i) the experimental redshifted absorption and (ii) suppressed photoluminescence observed in N-deficient g-C3N4 samples. Most importantly (iii) energy-level alignment at the water-semiconductor interface explains the enhanced photocatalytic reduction and reduced oxidation activity reported experimentally. Overall, our results provide a unified microscopic picture that quantitatively connects defect-induced electronic structure changes and experimental observables, offering concrete predictive strategy for designing defect engineered carbon nitride and related metal-free photocatalysts.

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Article information

Article type
Communication
Submitted
11 Mar 2026
Accepted
29 Apr 2026
First published
30 Apr 2026
This article is Open Access
Creative Commons BY-NC license

Mater. Horiz., 2026, Accepted Manuscript

Nitrogen Vacancies in Graphitic Carbon Nitride and their Role in Heterogeneous Photocatalysis

A. Landi, F. Ambrosio, N. Bianchi, M. Loriso, L. Malavasi, A. Profumo, J. Wiktor and A. Peluso, Mater. Horiz., 2026, Accepted Manuscript , DOI: 10.1039/D6MH00462H

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