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Structural modification of ZnO@Ag(2)O nanostructures functionalized on optical fiber for room-temperature acetone detection with sub-ppm sensitivity.

PubMed
Authors: Sahu AK, Nayak KC, Tripathy SK

Year

2026

Paper ID

76033

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

210

Citations

N/A

Abstract

In this work, a high-performance, room-temperature-operated acetone gas sensor is developed based on cladding-modified optical fiber functionalized with hierarchical flower-like ZnO@AgO nanostructures. Unlike conventional metal-oxide gas sensors operating at elevated temperatures, the formation of a p-n heterojunction between p-type AgO and n-type ZnO facilitates efficient charge separation and significantly lowers the activation energy for acetone oxidation, enabling enhanced sensing at ambient conditions. The structural and morphological properties were characterized by X-ray diffraction, FESEM, XPS, and FTIR. The sensing performance was achieved by coating the modified fiber cladding with ZnO@AgO, where evanescent-field interaction and adsorption-induced optical property changes govern the sensing mechanism, as validated by COMSOL Multiphysics simulations. The flower-like morphology provides a larger surface area and abundant active sites, resulting in superior sensing performance compared to pristine ZnO nps. The performance parameters of the developed sensor include a sensitivity of 11.37/ppm, a limit of detection of 0.85 ppm, and response and recovery times of 14 s and 60 s, respectively, compared to pristine ZnO nps. Additionally, the sensor exhibits good selectivity for acetone over different interfering VOC species. Owing to its spark-free operation, low power consumption, and immunity to electromagnetic interference, the proposed sensing platform presents a promising solution for real-time acetone detection in industrial process monitoring and non-invasive biomedical diagnostics.

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  • In this work, a high-performance, room-temperature-operated acetone gas sensor is developed based on cladding-modified optical fiber functionalized with hierarchical...

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