A series of Ni-doped SnO2 nanorods with controlled morphology and surface composition were obtained via post-synthetic hydrothermal treatment. A comprehensive characterization combining advanced physicochemical methods and computational modeling was employed to investigate their formation and growth within the oriented attachment (OA) framework. High degradation rates of mixed dye pollutants were achieved in real river water, underscoring the photocatalyst’s robustness and practical applicability. These results highlight the pivotal role of and OA-driven growth in tuning photocatalytic activity, confirming the material’s potential for efficient multipollutant removal under environmentally relevant conditions.
Original languageEnglish
Article number107887
JournalSurfaces and Interfaces
Volume76
Early online date17 Oct 2025
DOIs
StatePublished - 1 Nov 2025

    Research areas

  • DFT calculations, Ni-doped SnO2 nanorods, Organic dyes, Oxygen vacancies, Photocatalysis, Real water matrix

ID: 138072031