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UV Sensor Based on Surface Acoustic Waves in ZnO/Fused Silica

Zinc oxide (ZnO) thin films have been grown by radio frequency sputtering technique on fused silica substrates. Optical and morphological characteristics of as-grown ZnO samples were measured by various techniques; an X-ray diffraction spectrum showed that the films exhibited hexagonal wurtzite stru...

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Autores principales: Caliendo, Cinzia, Benetti, Massimiliano, Cannatà, Domenico, Buzzin, Alessio, Grossi, Francesca, Verona, Enrico, de Cesare, Giampiero
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180897/
https://www.ncbi.nlm.nih.gov/pubmed/37177399
http://dx.doi.org/10.3390/s23094197
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author Caliendo, Cinzia
Benetti, Massimiliano
Cannatà, Domenico
Buzzin, Alessio
Grossi, Francesca
Verona, Enrico
de Cesare, Giampiero
author_facet Caliendo, Cinzia
Benetti, Massimiliano
Cannatà, Domenico
Buzzin, Alessio
Grossi, Francesca
Verona, Enrico
de Cesare, Giampiero
author_sort Caliendo, Cinzia
collection PubMed
description Zinc oxide (ZnO) thin films have been grown by radio frequency sputtering technique on fused silica substrates. Optical and morphological characteristics of as-grown ZnO samples were measured by various techniques; an X-ray diffraction spectrum showed that the films exhibited hexagonal wurtzite structure and were c-axis-oriented normal to the substrate surface. Scanning electron microscopy images showed the dense columnar structure of the ZnO layers, and light absorption measurements allowed us to estimate the penetration depth of the optical radiation in the 200 to 480 nm wavelength range and the ZnO band-gap. ZnO layers were used as a basic material for surface acoustic wave (SAW) delay lines consisting of two Al interdigitated transducers (IDTs) photolithographically implemented on the surface of the piezoelectric layer. The Rayleigh wave propagation characteristics were tested in darkness and under incident UV light illumination from the top surface of the ZnO layer and from the fused silica/ZnO interface. The sensor response, i.e., the wave velocity shift due to the acoustoelectric interaction between the photogenerated charge carriers and the electric potential associated with the acoustic wave, was measured for different UV power densities. The reversibility and repeatability of the sensor responses were assessed. The time response of the UV sensor showed a rise time and a recovery time of about 10 and 13 s, respectively, and a sensitivity of about 318 and 341 ppm/(mW/cm(2)) for top and bottom illumination, respectively. The ZnO/fused silica-based SAW UV sensors can be interrogated across the fused silica substrate thanks to its optical transparency in the UV range. The backlighting interrogation can find applications in harsh environments, as it prevents the sensing photoconductive layer from aggressive environmental effects or from any damage caused by cleaning the surface from dust which could deteriorate the sensor’s performance. Moreover, since the SAW sensors, by their operating principle, are suitable for wireless reading via radio signals, the ZnO/fused-silica-based sensors have the potential to be the first choice for UV sensing in harsh environments.
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spelling pubmed-101808972023-05-13 UV Sensor Based on Surface Acoustic Waves in ZnO/Fused Silica Caliendo, Cinzia Benetti, Massimiliano Cannatà, Domenico Buzzin, Alessio Grossi, Francesca Verona, Enrico de Cesare, Giampiero Sensors (Basel) Article Zinc oxide (ZnO) thin films have been grown by radio frequency sputtering technique on fused silica substrates. Optical and morphological characteristics of as-grown ZnO samples were measured by various techniques; an X-ray diffraction spectrum showed that the films exhibited hexagonal wurtzite structure and were c-axis-oriented normal to the substrate surface. Scanning electron microscopy images showed the dense columnar structure of the ZnO layers, and light absorption measurements allowed us to estimate the penetration depth of the optical radiation in the 200 to 480 nm wavelength range and the ZnO band-gap. ZnO layers were used as a basic material for surface acoustic wave (SAW) delay lines consisting of two Al interdigitated transducers (IDTs) photolithographically implemented on the surface of the piezoelectric layer. The Rayleigh wave propagation characteristics were tested in darkness and under incident UV light illumination from the top surface of the ZnO layer and from the fused silica/ZnO interface. The sensor response, i.e., the wave velocity shift due to the acoustoelectric interaction between the photogenerated charge carriers and the electric potential associated with the acoustic wave, was measured for different UV power densities. The reversibility and repeatability of the sensor responses were assessed. The time response of the UV sensor showed a rise time and a recovery time of about 10 and 13 s, respectively, and a sensitivity of about 318 and 341 ppm/(mW/cm(2)) for top and bottom illumination, respectively. The ZnO/fused silica-based SAW UV sensors can be interrogated across the fused silica substrate thanks to its optical transparency in the UV range. The backlighting interrogation can find applications in harsh environments, as it prevents the sensing photoconductive layer from aggressive environmental effects or from any damage caused by cleaning the surface from dust which could deteriorate the sensor’s performance. Moreover, since the SAW sensors, by their operating principle, are suitable for wireless reading via radio signals, the ZnO/fused-silica-based sensors have the potential to be the first choice for UV sensing in harsh environments. MDPI 2023-04-22 /pmc/articles/PMC10180897/ /pubmed/37177399 http://dx.doi.org/10.3390/s23094197 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Caliendo, Cinzia
Benetti, Massimiliano
Cannatà, Domenico
Buzzin, Alessio
Grossi, Francesca
Verona, Enrico
de Cesare, Giampiero
UV Sensor Based on Surface Acoustic Waves in ZnO/Fused Silica
title UV Sensor Based on Surface Acoustic Waves in ZnO/Fused Silica
title_full UV Sensor Based on Surface Acoustic Waves in ZnO/Fused Silica
title_fullStr UV Sensor Based on Surface Acoustic Waves in ZnO/Fused Silica
title_full_unstemmed UV Sensor Based on Surface Acoustic Waves in ZnO/Fused Silica
title_short UV Sensor Based on Surface Acoustic Waves in ZnO/Fused Silica
title_sort uv sensor based on surface acoustic waves in zno/fused silica
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180897/
https://www.ncbi.nlm.nih.gov/pubmed/37177399
http://dx.doi.org/10.3390/s23094197
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