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Low Power Resistive Oxygen Sensor Based on Sonochemical SrTi(0.6)Fe(0.4)O(2.8) (STFO40)

The current paper reports on a sonochemical synthesis method for manufacturing nanostructured (typical grain size of 50 nm) SrTi(0.6)Fe(0.4)O(2.8) (Sono-STFO40) powder. This powder is characterized using X ray-diffraction (XRD), Mössbauer spectroscopy and Scanning Electron Microscopy (SEM), and resu...

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Autores principales: Stratulat, Alisa, Serban, Bogdan-Catalin, de Luca, Andrea, Avramescu, Viorel, Cobianu, Cornel, Brezeanu, Mihai, Buiu, Octavian, Diamandescu, Lucian, Feder, Marcel, Ali, Syed Zeeshan, Udrea, Florin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4541946/
https://www.ncbi.nlm.nih.gov/pubmed/26205267
http://dx.doi.org/10.3390/s150717495
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author Stratulat, Alisa
Serban, Bogdan-Catalin
de Luca, Andrea
Avramescu, Viorel
Cobianu, Cornel
Brezeanu, Mihai
Buiu, Octavian
Diamandescu, Lucian
Feder, Marcel
Ali, Syed Zeeshan
Udrea, Florin
author_facet Stratulat, Alisa
Serban, Bogdan-Catalin
de Luca, Andrea
Avramescu, Viorel
Cobianu, Cornel
Brezeanu, Mihai
Buiu, Octavian
Diamandescu, Lucian
Feder, Marcel
Ali, Syed Zeeshan
Udrea, Florin
author_sort Stratulat, Alisa
collection PubMed
description The current paper reports on a sonochemical synthesis method for manufacturing nanostructured (typical grain size of 50 nm) SrTi(0.6)Fe(0.4)O(2.8) (Sono-STFO40) powder. This powder is characterized using X ray-diffraction (XRD), Mössbauer spectroscopy and Scanning Electron Microscopy (SEM), and results are compared with commercially available SrTi(0.4)Fe(0.6)O(2.8) (STFO60) powder. In order to manufacture resistive oxygen sensors, both Sono-STFO40 and STFO60 are deposited, by dip-pen nanolithography (DPN) method, on an SOI (Silicon-on-Insulator) micro-hotplate, employing a tungsten heater embedded within a dielectric membrane. Oxygen detection tests are performed in both dry (RH = 0%) and humid (RH = 60%) nitrogen atmosphere, varying oxygen concentrations between 1% and 16% (v/v), at a constant heater temperature of 650 °C. The oxygen sensor, based on the Sono-STFO40 sensing layer, shows good sensitivity, low power consumption (80 mW), and short response time (25 s). These performance are comparable to those exhibited by state-of-the-art O(2) sensors based on STFO60, thus proving Sono-STFO40 to be a material suitable for oxygen detection in harsh environments.
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spelling pubmed-45419462015-08-26 Low Power Resistive Oxygen Sensor Based on Sonochemical SrTi(0.6)Fe(0.4)O(2.8) (STFO40) Stratulat, Alisa Serban, Bogdan-Catalin de Luca, Andrea Avramescu, Viorel Cobianu, Cornel Brezeanu, Mihai Buiu, Octavian Diamandescu, Lucian Feder, Marcel Ali, Syed Zeeshan Udrea, Florin Sensors (Basel) Article The current paper reports on a sonochemical synthesis method for manufacturing nanostructured (typical grain size of 50 nm) SrTi(0.6)Fe(0.4)O(2.8) (Sono-STFO40) powder. This powder is characterized using X ray-diffraction (XRD), Mössbauer spectroscopy and Scanning Electron Microscopy (SEM), and results are compared with commercially available SrTi(0.4)Fe(0.6)O(2.8) (STFO60) powder. In order to manufacture resistive oxygen sensors, both Sono-STFO40 and STFO60 are deposited, by dip-pen nanolithography (DPN) method, on an SOI (Silicon-on-Insulator) micro-hotplate, employing a tungsten heater embedded within a dielectric membrane. Oxygen detection tests are performed in both dry (RH = 0%) and humid (RH = 60%) nitrogen atmosphere, varying oxygen concentrations between 1% and 16% (v/v), at a constant heater temperature of 650 °C. The oxygen sensor, based on the Sono-STFO40 sensing layer, shows good sensitivity, low power consumption (80 mW), and short response time (25 s). These performance are comparable to those exhibited by state-of-the-art O(2) sensors based on STFO60, thus proving Sono-STFO40 to be a material suitable for oxygen detection in harsh environments. MDPI 2015-07-20 /pmc/articles/PMC4541946/ /pubmed/26205267 http://dx.doi.org/10.3390/s150717495 Text en © 2015 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 license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Stratulat, Alisa
Serban, Bogdan-Catalin
de Luca, Andrea
Avramescu, Viorel
Cobianu, Cornel
Brezeanu, Mihai
Buiu, Octavian
Diamandescu, Lucian
Feder, Marcel
Ali, Syed Zeeshan
Udrea, Florin
Low Power Resistive Oxygen Sensor Based on Sonochemical SrTi(0.6)Fe(0.4)O(2.8) (STFO40)
title Low Power Resistive Oxygen Sensor Based on Sonochemical SrTi(0.6)Fe(0.4)O(2.8) (STFO40)
title_full Low Power Resistive Oxygen Sensor Based on Sonochemical SrTi(0.6)Fe(0.4)O(2.8) (STFO40)
title_fullStr Low Power Resistive Oxygen Sensor Based on Sonochemical SrTi(0.6)Fe(0.4)O(2.8) (STFO40)
title_full_unstemmed Low Power Resistive Oxygen Sensor Based on Sonochemical SrTi(0.6)Fe(0.4)O(2.8) (STFO40)
title_short Low Power Resistive Oxygen Sensor Based on Sonochemical SrTi(0.6)Fe(0.4)O(2.8) (STFO40)
title_sort low power resistive oxygen sensor based on sonochemical srti(0.6)fe(0.4)o(2.8) (stfo40)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4541946/
https://www.ncbi.nlm.nih.gov/pubmed/26205267
http://dx.doi.org/10.3390/s150717495
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