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Journal of Synthetic Crystals ›› 2026, Vol. 55 ›› Issue (9): 1481-1489.DOI: 10.16553/j.cnki.issn1000-985x.2026.0077

• Research Articles • Previous Articles     Next Articles

First-Principles Comparative Study on Electronic Structure Modulation and Photocatalytic Performance of Co/Fe/Ni-Doped LaTiO3

CHEN Meizhu1(), WANG Ao1, ZHANG Guanlun1, LI Jinying1(), YANG Chunwei2   

  1. 1.College of Physics,Jilin Normal University,Siping 136000,China
    2.College of Engineering,Jilin Normal University,Siping 136000,China
  • Received:2026-04-29 Online:2026-09-20 Published:2026-09-29
  • Contact: LI Jinying

Abstract: To overcome the bottlenecks of narrow photoresponse range and the thermodynamic limitations for photocatalytic water splitting in LaTiO3, first-principles calculations were performed to compare the modulation mechanisms of Co, Fe, and Ni single-doping. The results show that all three doped systems exhibit negative formation energies, with Ni doping yielding the lowest value (-1.14 eV). Phonon spectra display no imaginary frequencies, confirming the kinetic stability of all systems. The band gap of pristine LaTiO3 is 2.299 eV, which decreases to 1.674 (indirect band gap), 1.405, and 0.928 eV for Co, Fe, and Ni doping, respectively. Notably, the band gaps for Fe and Ni doping are too narrow to satisfy the thermodynamic requirement for overall water splitting (≥1.23 eV). -COHP and Bader charge analyses confirm the enhanced M—O covalency after doping, with the net bonding strength from high to low following the order of Co, Fe, and Ni doping, while the charge transfer strength from high to low follows the order of Ni, Co, and Fe doping, with Ni doping exhibiting the largest charge transfer (electron loss of 1.15 e). Co doping shifts the absorption edge to 520 nm, achieving a peak visible-light absorption coefficient of 2.0×105 cm-1, and increases the work function to 3.05 eV, which is attributed to the reconstruction of the electronic density of states near the Fermi level. Based on the comprehensive evaluation of band gap, optical absorption, and charge carrier separation performance, Co doping is identified as the optimal strategy for modifying LaTiO3 for photocatalytic water splitting. This study provides theoretical support for the design and optimization of perovskite-based photocatalytic materials through doping.

Key words: LaTiO3; perovskite; transition metal doping; electronic structure; first-principles calculation

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