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Uniformly Porous Nanocrystalline CaMgFe(1.33)Ti(3)O(12) Ceramic Derived Electro-Ceramic Nanocomposite for Impedance Type Humidity Sensor

Since humidity sensors have been widely used in many sectors, a suitable humidity sensing material with improved sensitivity, faster response and recovery times, better stability and low hysteresis is necessary to be developed. Here, we fabricate a uniformly porous humidity sensor using Ca, Ti subst...

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Autores principales: Tripathy, Ashis, Pramanik, Sumit, Manna, Ayan, Shasmin, Hanie Nadia, Radzi, Zamri, Abu Osman, Noor Azuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5191010/
https://www.ncbi.nlm.nih.gov/pubmed/27916913
http://dx.doi.org/10.3390/s16122029
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author Tripathy, Ashis
Pramanik, Sumit
Manna, Ayan
Shasmin, Hanie Nadia
Radzi, Zamri
Abu Osman, Noor Azuan
author_facet Tripathy, Ashis
Pramanik, Sumit
Manna, Ayan
Shasmin, Hanie Nadia
Radzi, Zamri
Abu Osman, Noor Azuan
author_sort Tripathy, Ashis
collection PubMed
description Since humidity sensors have been widely used in many sectors, a suitable humidity sensing material with improved sensitivity, faster response and recovery times, better stability and low hysteresis is necessary to be developed. Here, we fabricate a uniformly porous humidity sensor using Ca, Ti substituted Mg ferrites with chemical formula of CaMgFe(1.33)Ti(3)O(12) as humidity sensing materials by solid-sate step-sintering technique. This synthesis technique is useful to control the grain size with increased porosity to enhance the hydrophilic characteristics of the CaMgFe(1.33)Ti(3)O(12) nanoceramic based sintered electro-ceramic nanocomposites. The highest porosity, lowest density and excellent surface-hydrophilicity properties were obtained at 1050 °C sintered ceramic. The performance of this impedance type humidity sensor was evaluated by electrical characterizations using alternating current (AC) in the 33%–95% relative humidity (RH) range at 25 °C. Compared with existing conventional resistive humidity sensors, the present sintered electro-ceramic nanocomposite based humidity sensor showed faster response time (20 s) and recovery time (40 s). This newly developed sensor showed extremely high sensitivity (%S) and small hysteresis of <3.4%. Long-term stability of the sensor had been determined by testing for 30 consecutive days. Therefore, the high performance sensing behavior of the present electro-ceramic nanocomposites would be suitable for a potential use in advanced humidity sensors.
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spelling pubmed-51910102017-01-03 Uniformly Porous Nanocrystalline CaMgFe(1.33)Ti(3)O(12) Ceramic Derived Electro-Ceramic Nanocomposite for Impedance Type Humidity Sensor Tripathy, Ashis Pramanik, Sumit Manna, Ayan Shasmin, Hanie Nadia Radzi, Zamri Abu Osman, Noor Azuan Sensors (Basel) Article Since humidity sensors have been widely used in many sectors, a suitable humidity sensing material with improved sensitivity, faster response and recovery times, better stability and low hysteresis is necessary to be developed. Here, we fabricate a uniformly porous humidity sensor using Ca, Ti substituted Mg ferrites with chemical formula of CaMgFe(1.33)Ti(3)O(12) as humidity sensing materials by solid-sate step-sintering technique. This synthesis technique is useful to control the grain size with increased porosity to enhance the hydrophilic characteristics of the CaMgFe(1.33)Ti(3)O(12) nanoceramic based sintered electro-ceramic nanocomposites. The highest porosity, lowest density and excellent surface-hydrophilicity properties were obtained at 1050 °C sintered ceramic. The performance of this impedance type humidity sensor was evaluated by electrical characterizations using alternating current (AC) in the 33%–95% relative humidity (RH) range at 25 °C. Compared with existing conventional resistive humidity sensors, the present sintered electro-ceramic nanocomposite based humidity sensor showed faster response time (20 s) and recovery time (40 s). This newly developed sensor showed extremely high sensitivity (%S) and small hysteresis of <3.4%. Long-term stability of the sensor had been determined by testing for 30 consecutive days. Therefore, the high performance sensing behavior of the present electro-ceramic nanocomposites would be suitable for a potential use in advanced humidity sensors. MDPI 2016-11-30 /pmc/articles/PMC5191010/ /pubmed/27916913 http://dx.doi.org/10.3390/s16122029 Text en © 2016 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
Tripathy, Ashis
Pramanik, Sumit
Manna, Ayan
Shasmin, Hanie Nadia
Radzi, Zamri
Abu Osman, Noor Azuan
Uniformly Porous Nanocrystalline CaMgFe(1.33)Ti(3)O(12) Ceramic Derived Electro-Ceramic Nanocomposite for Impedance Type Humidity Sensor
title Uniformly Porous Nanocrystalline CaMgFe(1.33)Ti(3)O(12) Ceramic Derived Electro-Ceramic Nanocomposite for Impedance Type Humidity Sensor
title_full Uniformly Porous Nanocrystalline CaMgFe(1.33)Ti(3)O(12) Ceramic Derived Electro-Ceramic Nanocomposite for Impedance Type Humidity Sensor
title_fullStr Uniformly Porous Nanocrystalline CaMgFe(1.33)Ti(3)O(12) Ceramic Derived Electro-Ceramic Nanocomposite for Impedance Type Humidity Sensor
title_full_unstemmed Uniformly Porous Nanocrystalline CaMgFe(1.33)Ti(3)O(12) Ceramic Derived Electro-Ceramic Nanocomposite for Impedance Type Humidity Sensor
title_short Uniformly Porous Nanocrystalline CaMgFe(1.33)Ti(3)O(12) Ceramic Derived Electro-Ceramic Nanocomposite for Impedance Type Humidity Sensor
title_sort uniformly porous nanocrystalline camgfe(1.33)ti(3)o(12) ceramic derived electro-ceramic nanocomposite for impedance type humidity sensor
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5191010/
https://www.ncbi.nlm.nih.gov/pubmed/27916913
http://dx.doi.org/10.3390/s16122029
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