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◆ Journal of the American Chemical Society2026-02-03· Orthorhombic crystal system

Computational and Experimental Realization of Metal-Ion-Doped Orthorhombic Sn <sub>3</sub> O <sub>4</sub> for Visible-Light-Active Photocatalysis

Sho Uchida, Yuta Sekine, Yohei Cho, Akira Yamaguchi, Toyokazu Tanabe, Kenji Yamaguchi, Masahiro Miyauchi

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide The orthorhombic tri-tin tetraoxide (Sn 3 O 4 ) is a newly discovered polymorph and has attracted great attention due to its visible-light absorption capability. To improve performance and broaden the material space based on orthorhombic Sn 3 O 4, impurity doping represents a promising approach. In this study, we predict stable cation-doped orthorhombic Sn 3 O 4 crystals using machine learning interatomic potential (MLIP) calculations. Several candidate cations such as boron (B), aluminum (Al), strontium (Sr), and yttrium (Y) have been predicted as stable dopants in orthorhombic Sn 3 O 4 with low Gibbs energies of formation. Based on this prediction, we synthesized cation-doped Sn 3 O 4 powder samples using a hydrothermal method. We confirmed that the cations predicted to be stable by the MLIP could be synthesized into the orthorhombic powder phase. Among the samples, the Al-doped Sn 3 O 4 powder exhibited superior photocatalytic hydrogen production activity under visible light. Furthermore, we fabricated thin films of Al-doped Sn 3 O 4 and optimized the doping amount of Al to achieve high photocatalytic activity. The 5% Al-doped Sn 3 O 4 exhibited the highest activity owing to its high crystallinity and optimal morphology for better separation of photogenerated carriers. The Al-doped orthorhombic Sn 3 O 4 is promising for application as a visible light-active photocatalyst.
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Computational and Experimental Realization of Metal-Ion-Doped Orthorhombic Sn <sub>3</sub> O <sub>4</sub> for Visible-Light-Active Photocatalysis — 科研速览 Science Skim