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Nitrogen Dioxide Sensing Using Multilayer Structure of Reduced Graphene Oxide and α-Fe(2)O(3)

Multilayers consisting of graphene oxide (GO) and α-Fe(2)O(3) thin layers were deposited on the ceramic substrates by the spray LbL (layer by layer) coating technique. Graphene oxide was prepared from graphite using the modified Hummers method. Obtained GO flakes reached up to 6 nanometers in thickn...

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Autores principales: Pisarkiewicz, Tadeusz, Maziarz, Wojciech, Małolepszy, Artur, Stobiński, Leszek, Michoń, Dagmara Agnieszka, Szkudlarek, Aleksandra, Pisarek, Marcin, Kanak, Jarosław, Rydosz, Artur
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7867266/
https://www.ncbi.nlm.nih.gov/pubmed/33540780
http://dx.doi.org/10.3390/s21031011
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author Pisarkiewicz, Tadeusz
Maziarz, Wojciech
Małolepszy, Artur
Stobiński, Leszek
Michoń, Dagmara Agnieszka
Szkudlarek, Aleksandra
Pisarek, Marcin
Kanak, Jarosław
Rydosz, Artur
author_facet Pisarkiewicz, Tadeusz
Maziarz, Wojciech
Małolepszy, Artur
Stobiński, Leszek
Michoń, Dagmara Agnieszka
Szkudlarek, Aleksandra
Pisarek, Marcin
Kanak, Jarosław
Rydosz, Artur
author_sort Pisarkiewicz, Tadeusz
collection PubMed
description Multilayers consisting of graphene oxide (GO) and α-Fe(2)O(3) thin layers were deposited on the ceramic substrates by the spray LbL (layer by layer) coating technique. Graphene oxide was prepared from graphite using the modified Hummers method. Obtained GO flakes reached up to 6 nanometers in thickness and 10 micrometers in lateral size. Iron oxide Fe(2)O(3) was obtained by the wet chemical method from FeCl(3) and NH(4)OH solution. Manufactured samples were deposited as 3 LbL (GO and Fe(2)O(3) layers deposited sequentially) and 6 LbL structures with GO as a bottom layer. Electrical measurements show the decrease of multilayer resistance after the introduction of the oxidizing NO(2) gas to the ambient air atmosphere. The concentration of NO(2) was changed from 1 ppm to 20 ppm. The samples changed their resistance even at temperatures close to room temperature, however, the sensitivity increased with temperature. Fe(2)O(3) is known as an n-type semiconductor, but the rGO/Fe(2)O(3) hybrid structure behaved similarly to rGO, which is p-type. Both chemisorbed O(2) and NO(2) act as electron traps decreasing the concentration of electrons and increasing the effective multilayer conductivity. An explanation of the observed variations of multilayer structure resistance also the possibility of heterojunctions formation was taken into account.
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spelling pubmed-78672662021-02-07 Nitrogen Dioxide Sensing Using Multilayer Structure of Reduced Graphene Oxide and α-Fe(2)O(3) Pisarkiewicz, Tadeusz Maziarz, Wojciech Małolepszy, Artur Stobiński, Leszek Michoń, Dagmara Agnieszka Szkudlarek, Aleksandra Pisarek, Marcin Kanak, Jarosław Rydosz, Artur Sensors (Basel) Communication Multilayers consisting of graphene oxide (GO) and α-Fe(2)O(3) thin layers were deposited on the ceramic substrates by the spray LbL (layer by layer) coating technique. Graphene oxide was prepared from graphite using the modified Hummers method. Obtained GO flakes reached up to 6 nanometers in thickness and 10 micrometers in lateral size. Iron oxide Fe(2)O(3) was obtained by the wet chemical method from FeCl(3) and NH(4)OH solution. Manufactured samples were deposited as 3 LbL (GO and Fe(2)O(3) layers deposited sequentially) and 6 LbL structures with GO as a bottom layer. Electrical measurements show the decrease of multilayer resistance after the introduction of the oxidizing NO(2) gas to the ambient air atmosphere. The concentration of NO(2) was changed from 1 ppm to 20 ppm. The samples changed their resistance even at temperatures close to room temperature, however, the sensitivity increased with temperature. Fe(2)O(3) is known as an n-type semiconductor, but the rGO/Fe(2)O(3) hybrid structure behaved similarly to rGO, which is p-type. Both chemisorbed O(2) and NO(2) act as electron traps decreasing the concentration of electrons and increasing the effective multilayer conductivity. An explanation of the observed variations of multilayer structure resistance also the possibility of heterojunctions formation was taken into account. MDPI 2021-02-02 /pmc/articles/PMC7867266/ /pubmed/33540780 http://dx.doi.org/10.3390/s21031011 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 Communication
Pisarkiewicz, Tadeusz
Maziarz, Wojciech
Małolepszy, Artur
Stobiński, Leszek
Michoń, Dagmara Agnieszka
Szkudlarek, Aleksandra
Pisarek, Marcin
Kanak, Jarosław
Rydosz, Artur
Nitrogen Dioxide Sensing Using Multilayer Structure of Reduced Graphene Oxide and α-Fe(2)O(3)
title Nitrogen Dioxide Sensing Using Multilayer Structure of Reduced Graphene Oxide and α-Fe(2)O(3)
title_full Nitrogen Dioxide Sensing Using Multilayer Structure of Reduced Graphene Oxide and α-Fe(2)O(3)
title_fullStr Nitrogen Dioxide Sensing Using Multilayer Structure of Reduced Graphene Oxide and α-Fe(2)O(3)
title_full_unstemmed Nitrogen Dioxide Sensing Using Multilayer Structure of Reduced Graphene Oxide and α-Fe(2)O(3)
title_short Nitrogen Dioxide Sensing Using Multilayer Structure of Reduced Graphene Oxide and α-Fe(2)O(3)
title_sort nitrogen dioxide sensing using multilayer structure of reduced graphene oxide and α-fe(2)o(3)
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7867266/
https://www.ncbi.nlm.nih.gov/pubmed/33540780
http://dx.doi.org/10.3390/s21031011
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