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P-Type Metal Oxide Semiconductor Thin Films: Synthesis and Chemical Sensor Applications

This review focuses on the synthesis of p-type metal-oxide (p-type MOX) semiconductor thin films, such as CuO, NiO, Co(3)O(4), and Cr(2)O(3), used for chemical-sensing applications. P-type MOX thin films exhibit several advantages over n-type MOX, including a higher catalytic effect, low humidity de...

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Detalles Bibliográficos
Autores principales: Moumen, Abderrahim, Kumarage, Gayan C. W., Comini, Elisabetta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8963036/
https://www.ncbi.nlm.nih.gov/pubmed/35214257
http://dx.doi.org/10.3390/s22041359
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author Moumen, Abderrahim
Kumarage, Gayan C. W.
Comini, Elisabetta
author_facet Moumen, Abderrahim
Kumarage, Gayan C. W.
Comini, Elisabetta
author_sort Moumen, Abderrahim
collection PubMed
description This review focuses on the synthesis of p-type metal-oxide (p-type MOX) semiconductor thin films, such as CuO, NiO, Co(3)O(4), and Cr(2)O(3), used for chemical-sensing applications. P-type MOX thin films exhibit several advantages over n-type MOX, including a higher catalytic effect, low humidity dependence, and improved recovery speed. However, the sensing performance of CuO, NiO, Co(3)O(4), and Cr(2)O(3) thin films is strongly related to the intrinsic physicochemical properties of the material and the thickness of these MOX thin films. The latter is heavily dependent on synthesis techniques. Many techniques used for growing p-MOX thin films are reviewed herein. Physical vapor-deposition techniques (PVD), such as magnetron sputtering, thermal evaporation, thermal oxidation, and molecular-beam epitaxial (MBE) growth were investigated, along with chemical vapor deposition (CVD). Liquid-phase routes, including sol–gel-assisted dip-and-spin coating, spray pyrolysis, and electrodeposition, are also discussed. A review of each technique, as well as factors that affect the physicochemical properties of p-type MOX thin films, such as morphology, crystallinity, defects, and grain size, is presented. The sensing mechanism describing the surface reaction of gases with MOX is also discussed. The sensing characteristics of CuO, NiO, Co(3)O(4), and Cr(2)O(3) thin films, including their response, sensor kinetics, stability, selectivity, and repeatability are reviewed. Different chemical compounds, including reducing gases (such as volatile organic compounds (VOCs), H(2), and NH(3)) and oxidizing gases, such as CO(2), NO(2), and O(3), were analyzed. Bulk doping, surface decoration, and heterostructures are some of the strategies for improving the sensing capabilities of the suggested pristine p-type MOX thin films. Future trends to overcome the challenges of p-type MOX thin-film chemical sensors are also presented.
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spelling pubmed-89630362022-03-30 P-Type Metal Oxide Semiconductor Thin Films: Synthesis and Chemical Sensor Applications Moumen, Abderrahim Kumarage, Gayan C. W. Comini, Elisabetta Sensors (Basel) Review This review focuses on the synthesis of p-type metal-oxide (p-type MOX) semiconductor thin films, such as CuO, NiO, Co(3)O(4), and Cr(2)O(3), used for chemical-sensing applications. P-type MOX thin films exhibit several advantages over n-type MOX, including a higher catalytic effect, low humidity dependence, and improved recovery speed. However, the sensing performance of CuO, NiO, Co(3)O(4), and Cr(2)O(3) thin films is strongly related to the intrinsic physicochemical properties of the material and the thickness of these MOX thin films. The latter is heavily dependent on synthesis techniques. Many techniques used for growing p-MOX thin films are reviewed herein. Physical vapor-deposition techniques (PVD), such as magnetron sputtering, thermal evaporation, thermal oxidation, and molecular-beam epitaxial (MBE) growth were investigated, along with chemical vapor deposition (CVD). Liquid-phase routes, including sol–gel-assisted dip-and-spin coating, spray pyrolysis, and electrodeposition, are also discussed. A review of each technique, as well as factors that affect the physicochemical properties of p-type MOX thin films, such as morphology, crystallinity, defects, and grain size, is presented. The sensing mechanism describing the surface reaction of gases with MOX is also discussed. The sensing characteristics of CuO, NiO, Co(3)O(4), and Cr(2)O(3) thin films, including their response, sensor kinetics, stability, selectivity, and repeatability are reviewed. Different chemical compounds, including reducing gases (such as volatile organic compounds (VOCs), H(2), and NH(3)) and oxidizing gases, such as CO(2), NO(2), and O(3), were analyzed. Bulk doping, surface decoration, and heterostructures are some of the strategies for improving the sensing capabilities of the suggested pristine p-type MOX thin films. Future trends to overcome the challenges of p-type MOX thin-film chemical sensors are also presented. MDPI 2022-02-10 /pmc/articles/PMC8963036/ /pubmed/35214257 http://dx.doi.org/10.3390/s22041359 Text en © 2022 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 Review
Moumen, Abderrahim
Kumarage, Gayan C. W.
Comini, Elisabetta
P-Type Metal Oxide Semiconductor Thin Films: Synthesis and Chemical Sensor Applications
title P-Type Metal Oxide Semiconductor Thin Films: Synthesis and Chemical Sensor Applications
title_full P-Type Metal Oxide Semiconductor Thin Films: Synthesis and Chemical Sensor Applications
title_fullStr P-Type Metal Oxide Semiconductor Thin Films: Synthesis and Chemical Sensor Applications
title_full_unstemmed P-Type Metal Oxide Semiconductor Thin Films: Synthesis and Chemical Sensor Applications
title_short P-Type Metal Oxide Semiconductor Thin Films: Synthesis and Chemical Sensor Applications
title_sort p-type metal oxide semiconductor thin films: synthesis and chemical sensor applications
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8963036/
https://www.ncbi.nlm.nih.gov/pubmed/35214257
http://dx.doi.org/10.3390/s22041359
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