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Article

Tuning of Photocatalytic and Piezophotocatalytic Activity of Bi3TiNbO9 via Synthesis-Controlled Surface Defect Engineering

1
Smart Materials Laboratory, Dagestan State University, St. M. Gadjieva 43-a, Dagestan Republic, Makhachkala 367000, Russia
2
Geothermal and Renewal Energy Institute of the Russian Academy of Sciences, Ave. 39-a, Dagestan Republic, Makhachkala 367030, Russia
3
Department of Chemical Thermodynamics and Kinetics, Saint Petersburg State University, 7/9 Universitetskaya nab., St. Petersburg 199034, Russia
4
School of Chemistry and Chemical Engineering, Shaanxi University of Science and Technology, Xi’an 710021, China
5
School of Environmental Science and Engineering, Shaanxi University of Science and Technology, Xi’an 710021, China
*
Authors to whom correspondence should be addressed.
Molecules 2025, 30(20), 4136; https://doi.org/10.3390/molecules30204136
Submission received: 24 September 2025 / Revised: 17 October 2025 / Accepted: 17 October 2025 / Published: 20 October 2025

Abstract

In this work, we investigate advanced photocatalyst Bi3TiNbO9 as promising piezophotocatalyst in terms of the effect of synthesis methods on the surface chemistry, structure, and catalytic performance in process of contaminant removal. Samples were prepared via solid-state reaction (BTNO-900) and molten salt synthesis (BTNO-800), leading to distinct morphologies and defect distributions. SEM imaging revealed that BTNO-900 consists of agglomerated, irregular particles, while BTNO-800 exhibits well-faceted, plate-like grains. Nitrogen adsorption analysis showed that the molten-synthesized sample possesses a significantly higher specific surface area (5.9 m2/g vs. 1.4 m2/g) and slightly larger average pore diameter (2.8 nm vs. 2.6 nm). High-resolution XPS revealed systematic shifts in binding energies for Bi 4f, Ti 2p, Nb 3d, and O 1s peaks in BTNO-900, accompanied by a higher content of adsorbed oxygen species (57% vs. 7.2%), indicating an increased concentration of oxygen vacancies and surface hydroxylation due to the solid-state synthesis route. Catalytic testing demonstrated that BTNO exhibits enhanced piezocatalytic efficiency of Methylene Blue degradation (~78% for both samples), whereas BTNO-800 shows significantly reduced photocatalytic activity (45.6%) compared to BTNO-900 (84.1%), suggesting recombination effects dominate in the more defective material. Synergism of light and mechanical stress results in piezophotocatalytic degradation for both samples (92.4% and 93.4%, relatively). These findings confirm that synthesis-controlled defect engineering is a key parameter for optimizing the photocatalytic behavior of Bi3TiNbO9-based layered oxides and crucial role of its piezocatalytic activity.
Keywords: Bi3TiNbO9; Aurivillius phases; perovskite-type layered oxide; piezophotocatalysis; piezocatalysis; photocatalysis; methylene blue degradation Bi3TiNbO9; Aurivillius phases; perovskite-type layered oxide; piezophotocatalysis; piezocatalysis; photocatalysis; methylene blue degradation
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MDPI and ACS Style

Orudzhev, F.F.; Magomedova, A.G.; Kurnosenko, S.A.; Beklemyshev, V.E.; Li, W.; Wang, C.; Zvereva, I.A. Tuning of Photocatalytic and Piezophotocatalytic Activity of Bi3TiNbO9 via Synthesis-Controlled Surface Defect Engineering. Molecules 2025, 30, 4136. https://doi.org/10.3390/molecules30204136

AMA Style

Orudzhev FF, Magomedova AG, Kurnosenko SA, Beklemyshev VE, Li W, Wang C, Zvereva IA. Tuning of Photocatalytic and Piezophotocatalytic Activity of Bi3TiNbO9 via Synthesis-Controlled Surface Defect Engineering. Molecules. 2025; 30(20):4136. https://doi.org/10.3390/molecules30204136

Chicago/Turabian Style

Orudzhev, Farid F., Asiyat G. Magomedova, Sergei A. Kurnosenko, Vladislav E. Beklemyshev, Wei Li, Chuanyi Wang, and Irina A. Zvereva. 2025. "Tuning of Photocatalytic and Piezophotocatalytic Activity of Bi3TiNbO9 via Synthesis-Controlled Surface Defect Engineering" Molecules 30, no. 20: 4136. https://doi.org/10.3390/molecules30204136

APA Style

Orudzhev, F. F., Magomedova, A. G., Kurnosenko, S. A., Beklemyshev, V. E., Li, W., Wang, C., & Zvereva, I. A. (2025). Tuning of Photocatalytic and Piezophotocatalytic Activity of Bi3TiNbO9 via Synthesis-Controlled Surface Defect Engineering. Molecules, 30(20), 4136. https://doi.org/10.3390/molecules30204136

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