Modified WO3 nanosheets by N-GO nanocomposites to form NO2 sensor
In this work, WO3 nanosheets were synthesised and decorated with different percentages of N-GO nanocomposites to study gas sensing assets. The X-ray diffraction (XRD) and Raman spectra showed fine crystal quality. Scanning electron microscope (SEM) and transmission electron microscopy (TEM) illustra...
Main Authors: | , |
---|---|
Format: | Article |
Language: | English |
Published: |
Taylor & Francis Group
2021-01-01
|
Series: | Journal of Experimental Nanoscience |
Subjects: | |
Online Access: | http://dx.doi.org/10.1080/17458080.2021.1922670 |
id |
doaj-9a502e8409fc43ffa31767b757347729 |
---|---|
record_format |
Article |
spelling |
doaj-9a502e8409fc43ffa31767b7573477292021-06-11T09:33:07ZengTaylor & Francis GroupJournal of Experimental Nanoscience1745-80801745-80992021-01-0116114515910.1080/17458080.2021.19226701922670Modified WO3 nanosheets by N-GO nanocomposites to form NO2 sensorFarzaneh Badiezadeh0Salimeh Kimiagar1Department of Physics, Central Tehran Branch, Islamic Azad UniversityNano Research Lab (NRL), Department of Physics, Central Tehran Branch, Islamic Azad UniversityIn this work, WO3 nanosheets were synthesised and decorated with different percentages of N-GO nanocomposites to study gas sensing assets. The X-ray diffraction (XRD) and Raman spectra showed fine crystal quality. Scanning electron microscope (SEM) and transmission electron microscopy (TEM) illustrated nanosheets morphology for WO3 and confirmed its decoration. The variation of the sensor electrical resistance was studied at various gas concentrations in the range of temperature intervals. The optimal operational temperature was 200 °C. The optimum response signal and recovery time for WO3–N-GO 6% at 200 ppm concentration were 90 s and 205 s, respectively. The selectivity of the WO3–N-GO samples was 53%, 46% and 60% for WO3–N-GO 3%, WO3–N-GO 6% and WO3–N-GO 9%, respectively at 200 °C. The highest response was found for WO3–N-GO 9% to NO2 (58%) and WO3–N-GO 6% to CO (28%) at 200 °C. Therefore, by selecting the optimum percentage of N-GO nanocomposites, the sensors can be fabricated with the highest response to NO2 or CO.http://dx.doi.org/10.1080/17458080.2021.1922670wo3nanosheetsgas sensorn doped graphene |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Farzaneh Badiezadeh Salimeh Kimiagar |
spellingShingle |
Farzaneh Badiezadeh Salimeh Kimiagar Modified WO3 nanosheets by N-GO nanocomposites to form NO2 sensor Journal of Experimental Nanoscience wo3 nanosheets gas sensor n doped graphene |
author_facet |
Farzaneh Badiezadeh Salimeh Kimiagar |
author_sort |
Farzaneh Badiezadeh |
title |
Modified WO3 nanosheets by N-GO nanocomposites to form NO2 sensor |
title_short |
Modified WO3 nanosheets by N-GO nanocomposites to form NO2 sensor |
title_full |
Modified WO3 nanosheets by N-GO nanocomposites to form NO2 sensor |
title_fullStr |
Modified WO3 nanosheets by N-GO nanocomposites to form NO2 sensor |
title_full_unstemmed |
Modified WO3 nanosheets by N-GO nanocomposites to form NO2 sensor |
title_sort |
modified wo3 nanosheets by n-go nanocomposites to form no2 sensor |
publisher |
Taylor & Francis Group |
series |
Journal of Experimental Nanoscience |
issn |
1745-8080 1745-8099 |
publishDate |
2021-01-01 |
description |
In this work, WO3 nanosheets were synthesised and decorated with different percentages of N-GO nanocomposites to study gas sensing assets. The X-ray diffraction (XRD) and Raman spectra showed fine crystal quality. Scanning electron microscope (SEM) and transmission electron microscopy (TEM) illustrated nanosheets morphology for WO3 and confirmed its decoration. The variation of the sensor electrical resistance was studied at various gas concentrations in the range of temperature intervals. The optimal operational temperature was 200 °C. The optimum response signal and recovery time for WO3–N-GO 6% at 200 ppm concentration were 90 s and 205 s, respectively. The selectivity of the WO3–N-GO samples was 53%, 46% and 60% for WO3–N-GO 3%, WO3–N-GO 6% and WO3–N-GO 9%, respectively at 200 °C. The highest response was found for WO3–N-GO 9% to NO2 (58%) and WO3–N-GO 6% to CO (28%) at 200 °C. Therefore, by selecting the optimum percentage of N-GO nanocomposites, the sensors can be fabricated with the highest response to NO2 or CO. |
topic |
wo3 nanosheets gas sensor n doped graphene |
url |
http://dx.doi.org/10.1080/17458080.2021.1922670 |
work_keys_str_mv |
AT farzanehbadiezadeh modifiedwo3nanosheetsbyngonanocompositestoformno2sensor AT salimehkimiagar modifiedwo3nanosheetsbyngonanocompositestoformno2sensor |
_version_ |
1721382681921454080 |