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Development of an acetone sensor using nanostructured Co(3)O(4) thin films for exhaled breath analysis

In recent times, the development of breath sensors for the detection of Diabetic Keto-Acidosis (DKA) has been gaining prominent importance in the field of health care and advanced diagnostics. Acetone is one of the prominent biomarkers in the exhaled breath of persons affected by DKA. In this backgr...

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Autores principales: Srinivasan, Parthasarathy, Kulandaisamy, Arockia Jayalatha, Mani, Ganesh Kumar, Babu, K. Jayanth, Tsuchiya, Kazuyoshi, Rayappan, John Bosco Balaguru
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9072200/
https://www.ncbi.nlm.nih.gov/pubmed/35530198
http://dx.doi.org/10.1039/c9ra04230j
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author Srinivasan, Parthasarathy
Kulandaisamy, Arockia Jayalatha
Mani, Ganesh Kumar
Babu, K. Jayanth
Tsuchiya, Kazuyoshi
Rayappan, John Bosco Balaguru
author_facet Srinivasan, Parthasarathy
Kulandaisamy, Arockia Jayalatha
Mani, Ganesh Kumar
Babu, K. Jayanth
Tsuchiya, Kazuyoshi
Rayappan, John Bosco Balaguru
author_sort Srinivasan, Parthasarathy
collection PubMed
description In recent times, the development of breath sensors for the detection of Diabetic Keto-Acidosis (DKA) has been gaining prominent importance in the field of health care and advanced diagnostics. Acetone is one of the prominent biomarkers in the exhaled breath of persons affected by DKA. In this background, nanostructured cobalt oxide sensing elements were fabricated using a spray pyrolysis technique at different deposition temperatures (473 to 773 K in steps of 100 K) towards the fabrication of an acetone sensor. The influence of deposition temperature on the various properties of the nanostructured cobalt oxide thin films was investigated. Formation of cubic spinel phase cobalt oxide was confirmed from the structural analysis. The shifting of plane orientation from (3 1 1) to (2 2 0) at 773 K deposition temperature revealed the migration of cobalt atoms to the highly favorable energy positions. Further, the downshifted peak absorption wavelength and upshifted PL profile at higher deposition temperature confirmed the migration of cobalt ions. The sensor fabricated at higher deposition temperature (773 K) showed a sensing response of 235 at room temperature towards 50 ppm of acetone. Also, the fabricated sensor showed a lower detection limit (LOD) of 1 ppm with the response–recovery times of 6 and 4 s, respectively. The LOD reported here is lower than the minimum threshold level (1.71 ppm) signifying the presence of DKA.
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spelling pubmed-90722002022-05-06 Development of an acetone sensor using nanostructured Co(3)O(4) thin films for exhaled breath analysis Srinivasan, Parthasarathy Kulandaisamy, Arockia Jayalatha Mani, Ganesh Kumar Babu, K. Jayanth Tsuchiya, Kazuyoshi Rayappan, John Bosco Balaguru RSC Adv Chemistry In recent times, the development of breath sensors for the detection of Diabetic Keto-Acidosis (DKA) has been gaining prominent importance in the field of health care and advanced diagnostics. Acetone is one of the prominent biomarkers in the exhaled breath of persons affected by DKA. In this background, nanostructured cobalt oxide sensing elements were fabricated using a spray pyrolysis technique at different deposition temperatures (473 to 773 K in steps of 100 K) towards the fabrication of an acetone sensor. The influence of deposition temperature on the various properties of the nanostructured cobalt oxide thin films was investigated. Formation of cubic spinel phase cobalt oxide was confirmed from the structural analysis. The shifting of plane orientation from (3 1 1) to (2 2 0) at 773 K deposition temperature revealed the migration of cobalt atoms to the highly favorable energy positions. Further, the downshifted peak absorption wavelength and upshifted PL profile at higher deposition temperature confirmed the migration of cobalt ions. The sensor fabricated at higher deposition temperature (773 K) showed a sensing response of 235 at room temperature towards 50 ppm of acetone. Also, the fabricated sensor showed a lower detection limit (LOD) of 1 ppm with the response–recovery times of 6 and 4 s, respectively. The LOD reported here is lower than the minimum threshold level (1.71 ppm) signifying the presence of DKA. The Royal Society of Chemistry 2019-09-24 /pmc/articles/PMC9072200/ /pubmed/35530198 http://dx.doi.org/10.1039/c9ra04230j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Srinivasan, Parthasarathy
Kulandaisamy, Arockia Jayalatha
Mani, Ganesh Kumar
Babu, K. Jayanth
Tsuchiya, Kazuyoshi
Rayappan, John Bosco Balaguru
Development of an acetone sensor using nanostructured Co(3)O(4) thin films for exhaled breath analysis
title Development of an acetone sensor using nanostructured Co(3)O(4) thin films for exhaled breath analysis
title_full Development of an acetone sensor using nanostructured Co(3)O(4) thin films for exhaled breath analysis
title_fullStr Development of an acetone sensor using nanostructured Co(3)O(4) thin films for exhaled breath analysis
title_full_unstemmed Development of an acetone sensor using nanostructured Co(3)O(4) thin films for exhaled breath analysis
title_short Development of an acetone sensor using nanostructured Co(3)O(4) thin films for exhaled breath analysis
title_sort development of an acetone sensor using nanostructured co(3)o(4) thin films for exhaled breath analysis
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9072200/
https://www.ncbi.nlm.nih.gov/pubmed/35530198
http://dx.doi.org/10.1039/c9ra04230j
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