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Comparative analysis of Titanium-doped zinc oxide (Ti-ZnO) nanophosphors synthesized via hydrothermal, Sol–Gel, and precipitation method


Citation

Santhakumar, Mona Sri and Ong Abdullah, Janna and Abd Gani, Shafinaz and Berahim, Zulkarami and Azzeme, Azzreena Mohamad and Baharudin, Khairul Basyar and Halim, Murni and Mohamad, Rosfarizan and M. Sobri, Zulfazli (2026) Comparative analysis of Titanium-doped zinc oxide (Ti-ZnO) nanophosphors synthesized via hydrothermal, Sol–Gel, and precipitation method. Next Materials, 13. art. no. 102683. pp. 1-12. ISSN 2949-8228

Abstract

Nanophosphors have attracted significant attention due to their tunable optical properties and potential photocatalytic applications. In this study, titanium-doped ZnO (Ti–ZnO) nanophosphors were synthesized via hydrothermal (H–TiZnO), sol–gel (S–TiZnO), and co-precipitation (P–TiZnO) methods to evaluate the effect of synthesis route on their structural and optical properties. UV–Vis spectra showed strong absorbance of H–TiZnO in the 250–400 nm region. Tauc plot analysis revealed synthesis-dependent optical bandgaps of 2.48 eV (P–TiZnO), 3.09 eV (H–TiZnO), and 4.71 eV (S–TiZnO), confirming the strong influence of preparation method. Photoluminescence spectra showed emission peaks at ∼369 nm (H–TiZnO), ∼396 nm (S–TiZnO), and ∼402 nm (P–TiZnO), with H–TiZnO exhibiting the highest intensity, indicating improved optical quality. Dynamic light scattering results showed particle sizes of 377.47 ± 4.20 nm (H–TiZnO), 375.43 ± 1.52 nm (S–TiZnO), and 1049.67 ± 5.49 nm (P–TiZnO), while zeta potential analysis confirmed better colloidal stability for H–TiZnO. FTIR and XRD confirmed Zn–O/Ti–O bonding and the wurtzite ZnO structure with successful Ti incorporation. HRTEM and XPS further supported improved crystallinity and uniform morphology in H–TiZnO. Overall, hydrothermal synthesis produced Ti–ZnO nanophosphors with superior structural, optical, and stability properties, making them promise for optoelectronic and photocatalytic applications.


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Additional Metadata

Item Type: Article
Subject: Materials Science (all)
Subject: Engineering (miscellaneous)
Divisions: Faculty of Biotechnology and Biomolecular Sciences
Institute of Tropical Agriculture and Food Security
DOI Number: https://doi.org/10.1016/j.nxmate.2026.102683
Publisher: Elsevier B.V.
Keywords: Co-precipitation; Hydrothermal synthesis; Physicochemical properties; Sol gel synthesis; Titanium-doped zinc oxide nanophosphors
Sustainable Development Goals (SDGs): SDG 9: Industry, Innovation and Infrastructure, SDG 11: Sustainable Cities and Communities, SDG 12: Responsible Consumption and Production
Depositing User: Ms. Siti Radziah Mohamed@mahmod
Date Deposited: 21 Jul 2026 03:00
Last Modified: 21 Jul 2026 03:00
Altmetrics: http://www.altmetric.com/details.php?domain=psasir.upm.edu.my&doi=10.1016/j.nxmate.2026.102683
URI: http://psasir.upm.edu.my/id/eprint/127180
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