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Enhanced High-Temperature (600 °C) NO(2) Response of ZnFe(2)O(4) Nanoparticle-Based Exhaust Gas Sensors
Fabrication of gas sensors to monitor toxic exhaust gases at high working temperatures is a challenging task due to the low sensitivity and narrow long-term stability of the devices under harsh conditions. Herein, the fabrication of a chemiresistor-type gas sensor is reported for the detection of NO...
Autores principales: | , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7693406/ https://www.ncbi.nlm.nih.gov/pubmed/33120962 http://dx.doi.org/10.3390/nano10112133 |
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author | Afzal, Adeel Mujahid, Adnan Iqbal, Naseer Javaid, Rahat Qazi, Umair Yaqub |
author_facet | Afzal, Adeel Mujahid, Adnan Iqbal, Naseer Javaid, Rahat Qazi, Umair Yaqub |
author_sort | Afzal, Adeel |
collection | PubMed |
description | Fabrication of gas sensors to monitor toxic exhaust gases at high working temperatures is a challenging task due to the low sensitivity and narrow long-term stability of the devices under harsh conditions. Herein, the fabrication of a chemiresistor-type gas sensor is reported for the detection of NO(2) gas at 600 °C. The sensing element consists of ZnFe(2)O(4) nanoparticles prepared via a high-energy ball milling and annealed at different temperatures (600–1000 °C). The effects of annealing temperature on the crystal structure, morphology, and gas sensing properties of ZnFe(2)O(4) nanoparticles are studied. A mixed spinel structure of ZnFe(2)O(4) nanoparticles with a lattice parameter of 8.445 Å is revealed by X-ray diffraction analysis. The crystallite size and X-ray density of ZnFe(2)O(4) nanoparticles increase with the annealing temperature, whereas the lattice parameter and volume are considerably reduced indicating lattice distortion and defects such as oxygen vacancies. ZnFe(2)O(4) nanoparticles annealed at 1000 °C exhibit the highest sensitivity (0.13% ppm(–1)), sharp response (τ(res) = 195 s), recovery (τ(rec) = 17 s), and linear response to 100–400 ppm NO(2) gas. The annealing temperature and oxygen vacancies play a major role in determining the sensitivity of devices. The plausible sensing mechanism is discussed. ZnFe(2)O(4) nanoparticles show great potential for high-temperature exhaust gas sensing applications. |
format | Online Article Text |
id | pubmed-7693406 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-76934062020-11-28 Enhanced High-Temperature (600 °C) NO(2) Response of ZnFe(2)O(4) Nanoparticle-Based Exhaust Gas Sensors Afzal, Adeel Mujahid, Adnan Iqbal, Naseer Javaid, Rahat Qazi, Umair Yaqub Nanomaterials (Basel) Article Fabrication of gas sensors to monitor toxic exhaust gases at high working temperatures is a challenging task due to the low sensitivity and narrow long-term stability of the devices under harsh conditions. Herein, the fabrication of a chemiresistor-type gas sensor is reported for the detection of NO(2) gas at 600 °C. The sensing element consists of ZnFe(2)O(4) nanoparticles prepared via a high-energy ball milling and annealed at different temperatures (600–1000 °C). The effects of annealing temperature on the crystal structure, morphology, and gas sensing properties of ZnFe(2)O(4) nanoparticles are studied. A mixed spinel structure of ZnFe(2)O(4) nanoparticles with a lattice parameter of 8.445 Å is revealed by X-ray diffraction analysis. The crystallite size and X-ray density of ZnFe(2)O(4) nanoparticles increase with the annealing temperature, whereas the lattice parameter and volume are considerably reduced indicating lattice distortion and defects such as oxygen vacancies. ZnFe(2)O(4) nanoparticles annealed at 1000 °C exhibit the highest sensitivity (0.13% ppm(–1)), sharp response (τ(res) = 195 s), recovery (τ(rec) = 17 s), and linear response to 100–400 ppm NO(2) gas. The annealing temperature and oxygen vacancies play a major role in determining the sensitivity of devices. The plausible sensing mechanism is discussed. ZnFe(2)O(4) nanoparticles show great potential for high-temperature exhaust gas sensing applications. MDPI 2020-10-27 /pmc/articles/PMC7693406/ /pubmed/33120962 http://dx.doi.org/10.3390/nano10112133 Text en © 2020 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 Afzal, Adeel Mujahid, Adnan Iqbal, Naseer Javaid, Rahat Qazi, Umair Yaqub Enhanced High-Temperature (600 °C) NO(2) Response of ZnFe(2)O(4) Nanoparticle-Based Exhaust Gas Sensors |
title | Enhanced High-Temperature (600 °C) NO(2) Response of ZnFe(2)O(4) Nanoparticle-Based Exhaust Gas Sensors |
title_full | Enhanced High-Temperature (600 °C) NO(2) Response of ZnFe(2)O(4) Nanoparticle-Based Exhaust Gas Sensors |
title_fullStr | Enhanced High-Temperature (600 °C) NO(2) Response of ZnFe(2)O(4) Nanoparticle-Based Exhaust Gas Sensors |
title_full_unstemmed | Enhanced High-Temperature (600 °C) NO(2) Response of ZnFe(2)O(4) Nanoparticle-Based Exhaust Gas Sensors |
title_short | Enhanced High-Temperature (600 °C) NO(2) Response of ZnFe(2)O(4) Nanoparticle-Based Exhaust Gas Sensors |
title_sort | enhanced high-temperature (600 °c) no(2) response of znfe(2)o(4) nanoparticle-based exhaust gas sensors |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7693406/ https://www.ncbi.nlm.nih.gov/pubmed/33120962 http://dx.doi.org/10.3390/nano10112133 |
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