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Growth Mechanisms of ZnO Micro-Nanomorphologies and Their Role in Enhancing Gas Sensing Properties

Zinc oxide (ZnO) is one of the main functional materials used to realize chemiresistive gas sensors. In addition, ZnO can be grown through many different methods obtaining the widest family of unique morphologies. However, the relationship between the ZnO morphologies and their gas sensing propertie...

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Autores principales: Fioravanti, Ambra, Marani, Pietro, Morandi, Sara, Lettieri, Stefano, Mazzocchi, Mauro, Sacerdoti, Michele, Carotta, Maria Cristina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7918259/
https://www.ncbi.nlm.nih.gov/pubmed/33668546
http://dx.doi.org/10.3390/s21041331
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author Fioravanti, Ambra
Marani, Pietro
Morandi, Sara
Lettieri, Stefano
Mazzocchi, Mauro
Sacerdoti, Michele
Carotta, Maria Cristina
author_facet Fioravanti, Ambra
Marani, Pietro
Morandi, Sara
Lettieri, Stefano
Mazzocchi, Mauro
Sacerdoti, Michele
Carotta, Maria Cristina
author_sort Fioravanti, Ambra
collection PubMed
description Zinc oxide (ZnO) is one of the main functional materials used to realize chemiresistive gas sensors. In addition, ZnO can be grown through many different methods obtaining the widest family of unique morphologies. However, the relationship between the ZnO morphologies and their gas sensing properties needs more detailed investigations, also with the aim to improve the sensor performances. In this work, seven nanoforms (such as leaves, bisphenoids, flowers, needles, etc.) were prepared through simple wet chemical synthesis. Morphological and structural characterizations were performed to figure out their growth mechanisms. Then, the obtained powders were deposited through screen-printing technique to realize thick film gas sensors. The gas sensing behavior was tested toward some traditional target gases and some volatile organic compounds (acetone, acetaldehyde, etc.) and compared with ZnO morphologies. Results showed a direct correlation between the sensors responses and the powders features (morphology and size), which depend on the specific synthesis process. The sensors can be divided in two behavioral classes, following the two main morphology kinds: aggregates of nanocrystals (leaves and bisphenoids), exhibiting best performances versus all tested gases and monocrystal based (stars, needle, long needles, flowers, and prisms).
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spelling pubmed-79182592021-03-02 Growth Mechanisms of ZnO Micro-Nanomorphologies and Their Role in Enhancing Gas Sensing Properties Fioravanti, Ambra Marani, Pietro Morandi, Sara Lettieri, Stefano Mazzocchi, Mauro Sacerdoti, Michele Carotta, Maria Cristina Sensors (Basel) Article Zinc oxide (ZnO) is one of the main functional materials used to realize chemiresistive gas sensors. In addition, ZnO can be grown through many different methods obtaining the widest family of unique morphologies. However, the relationship between the ZnO morphologies and their gas sensing properties needs more detailed investigations, also with the aim to improve the sensor performances. In this work, seven nanoforms (such as leaves, bisphenoids, flowers, needles, etc.) were prepared through simple wet chemical synthesis. Morphological and structural characterizations were performed to figure out their growth mechanisms. Then, the obtained powders were deposited through screen-printing technique to realize thick film gas sensors. The gas sensing behavior was tested toward some traditional target gases and some volatile organic compounds (acetone, acetaldehyde, etc.) and compared with ZnO morphologies. Results showed a direct correlation between the sensors responses and the powders features (morphology and size), which depend on the specific synthesis process. The sensors can be divided in two behavioral classes, following the two main morphology kinds: aggregates of nanocrystals (leaves and bisphenoids), exhibiting best performances versus all tested gases and monocrystal based (stars, needle, long needles, flowers, and prisms). MDPI 2021-02-13 /pmc/articles/PMC7918259/ /pubmed/33668546 http://dx.doi.org/10.3390/s21041331 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fioravanti, Ambra
Marani, Pietro
Morandi, Sara
Lettieri, Stefano
Mazzocchi, Mauro
Sacerdoti, Michele
Carotta, Maria Cristina
Growth Mechanisms of ZnO Micro-Nanomorphologies and Their Role in Enhancing Gas Sensing Properties
title Growth Mechanisms of ZnO Micro-Nanomorphologies and Their Role in Enhancing Gas Sensing Properties
title_full Growth Mechanisms of ZnO Micro-Nanomorphologies and Their Role in Enhancing Gas Sensing Properties
title_fullStr Growth Mechanisms of ZnO Micro-Nanomorphologies and Their Role in Enhancing Gas Sensing Properties
title_full_unstemmed Growth Mechanisms of ZnO Micro-Nanomorphologies and Their Role in Enhancing Gas Sensing Properties
title_short Growth Mechanisms of ZnO Micro-Nanomorphologies and Their Role in Enhancing Gas Sensing Properties
title_sort growth mechanisms of zno micro-nanomorphologies and their role in enhancing gas sensing properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7918259/
https://www.ncbi.nlm.nih.gov/pubmed/33668546
http://dx.doi.org/10.3390/s21041331
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