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March 6, 2026Next Materials0 citationsOpen Access

DFT investigation of the electronic, optical and photocatalytic properties of S and Cd Codoped SrTiO3 for improved hydrogen production

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NAN. El AlamiHBH. BentourIAI. El Arabi

Key Points

  • To investigate the electronic, optical, and photocatalytic traits of codoped SrTiO3 for hydrogen production.
  • Utilized density functional theory (DFT) with generalized gradient approximation (GGA)
  • Analyzed Cd, Cd/S, and Cd/2S codoping effects on SrTiO3 properties
  • Examined band gap reductions and their implications for photocatalytic activity
  • Cd and S codoping significantly reduces the band gap, enhancing photocatalytic efficiency
  • The band gap reduction was 0.45 eV for Cd, 0.92 eV for Cd/S, and 1.05 eV for Cd/2S codoping
  • These materials show suitable redox potential for water photodecomposition and hydrogen production under visible light

Abstract

In this study, we analyzed the electronic, optical, photocatalytic properties of Cd doped, Cd/S codoped, and Cd/2S codoped SrTiO₃ using density functional theory (DFT) with generalized gradient approximation (GGA). Our findings show that doping causes a significant reduction in the band gap, promoting photocatalytic activity under visible light. More specifically, Cd monodoping lowers the effective energy of the forbidden band by approximately 0.45 eV. Similarly, the Cd/S codoping causes a reduction of around 0.92 eV, whereas the Cd/2S codoping causes the greatest reduction, which is 1.05 eV. The analysis of the potentials of the conduction band (CBM) and the valence band (VBM) reveals that they include the redox potentials of water, indicating that these materials are thermodynamically suitable for the photodecomposition of water resulting the production of hydrogen under visible light. • Cd and S Codoping SrTiO 3 optimizes optical and electronic properties, contributing to more efficient hydrogen production. • Reduction of the band gap to 2.15 eV increases the absorption in the solar spectrum. • Improved charge separation for high catalytic efficiency. • This study reveals the prospects for advanced photocatalyst materials.

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Cite This Study

Alami et al. (2026) studied this question.

synapsesocial.com/papers/69aa6f0d531e4c4a9ff5926bhttps://doi.org/10.1016/j.nxmate.2026.101821
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