Manoharan, M and Rajalingam, B (2025) A modified sol-gel synthesis protocol for high-quality ZnSnO₃ thin films with enhanced electrical and optical properties for energy and sensor applications. MethodsX, 15. ISSN 22150161
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Abstract
This paper presents a modified sol-gel synthesis methodology for producing high-quality ZnSnO₃ thin films with improved optical transparency, electrical conductivity, and gas-sensing capabilities, ideal for renewable energy and sensor applications. Adjusting the annealing temperature from 200 to 500 °C allowed for precise control of phase, transparency, and conductivity. X-ray diffraction showed that temperature drives the transformation from amorphous to crystalline phases.Films annealed at 350 °C exhibited over 85 % transmittance in the visible spectrum and a direct band gap of 3.3 eV, making them excellent candidates for transparent electrodes in future photovoltaic and optoelectronic systems. At 450 °C, electrical testing revealed a low resistivity of 5.2 × 10⁻³ Ω·cm, representing a significant improvement over typical ZnO-based transparent conductive oxide.Gas-sensing studies showed strong responses—75 % for CO₂ at 250 °C and 70 % for NO₂ at 300 °C—with more than 95 % retention after 50 cycles, indicating long-term stability. Energy-efficient transparent electronics, environmental monitoring, and high-sensitivity gas sensors can be reproducibly and scalably fabricated using the updated sol-gel technique. © 2025 Elsevier B.V., All rights reserved.
| Item Type: | Article |
|---|---|
| Uncontrolled Keywords: | Gas sensing performance; Optical and electrical properties; Sol-gel synthesis; Transparent electronics; ZnSnO₃ thin films |
| Subjects: | Material Science > Biomaterials |
| Divisions: | Arts and Science > School of Arts and Science, Chennai > Computer Science |
| Depositing User: | Unnamed user with email techsupport@mosys.org |
| Date Deposited: | 19 Nov 2025 11:37 |
| Last Modified: | 19 Nov 2025 11:37 |
| URI: | https://vmuir.mosys.org/id/eprint/588 |
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