Effects of sintering temperature on physical properties, phase, microstructure and oxygen stoichiometry of Na<inf>y</inf>CoO<inf>2</inf> ceramics

© 2018, Chiang Mai University. All rights reserved. Due to the stability in air, low cost and non-toxicity, oxide thermoelectrics have been considered a potential candidate for high-temperature waste-heat recovery devices. In this study, the effects of sintering temperature on phase, microstructure...

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Main Authors: Pimpilai Wannasut, Paitoon Boonsong, Poom Prayoonphokkharat, Nittaya Keawprak, Anucha Watcharapasorn
Format: Journal
Published: 2018
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/62577
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spelling th-cmuir.6653943832-625772018-11-29T07:57:15Z Effects of sintering temperature on physical properties, phase, microstructure and oxygen stoichiometry of Na<inf>y</inf>CoO<inf>2</inf> ceramics Pimpilai Wannasut Paitoon Boonsong Poom Prayoonphokkharat Nittaya Keawprak Anucha Watcharapasorn Biochemistry, Genetics and Molecular Biology Chemistry Materials Science Mathematics Physics and Astronomy © 2018, Chiang Mai University. All rights reserved. Due to the stability in air, low cost and non-toxicity, oxide thermoelectrics have been considered a potential candidate for high-temperature waste-heat recovery devices. In this study, the effects of sintering temperature on phase, microstructure and oxygen content of NayCoO2 (NCO) ceramics were investigated. The NCO ceramics were prepared by conventional solid-state reaction and sintering methods. The sintering condition included a temperature range of 800-950 °C and 18 h sintering time. The ceramic with a highest density value of 4.76 g/cm3 was obtained by being sintered at 900 °C with the linear shrinkage of ~12%. X-ray diffractometry and Raman spectroscopy were used for phase analysis. The microstructure was determined by scanning electron microscopy. The change in oxygen stoichiometry was discussed in relation with the crystal structure and microstructural characteristics in order to elucidate the stability of this compound for high-temperature operation of thermoelectric device. 2018-11-29T07:32:52Z 2018-11-29T07:32:52Z 2018-08-01 Journal 01252526 2-s2.0-85056359726 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85056359726&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/62577
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Biochemistry, Genetics and Molecular Biology
Chemistry
Materials Science
Mathematics
Physics and Astronomy
spellingShingle Biochemistry, Genetics and Molecular Biology
Chemistry
Materials Science
Mathematics
Physics and Astronomy
Pimpilai Wannasut
Paitoon Boonsong
Poom Prayoonphokkharat
Nittaya Keawprak
Anucha Watcharapasorn
Effects of sintering temperature on physical properties, phase, microstructure and oxygen stoichiometry of Na<inf>y</inf>CoO<inf>2</inf> ceramics
description © 2018, Chiang Mai University. All rights reserved. Due to the stability in air, low cost and non-toxicity, oxide thermoelectrics have been considered a potential candidate for high-temperature waste-heat recovery devices. In this study, the effects of sintering temperature on phase, microstructure and oxygen content of NayCoO2 (NCO) ceramics were investigated. The NCO ceramics were prepared by conventional solid-state reaction and sintering methods. The sintering condition included a temperature range of 800-950 °C and 18 h sintering time. The ceramic with a highest density value of 4.76 g/cm3 was obtained by being sintered at 900 °C with the linear shrinkage of ~12%. X-ray diffractometry and Raman spectroscopy were used for phase analysis. The microstructure was determined by scanning electron microscopy. The change in oxygen stoichiometry was discussed in relation with the crystal structure and microstructural characteristics in order to elucidate the stability of this compound for high-temperature operation of thermoelectric device.
format Journal
author Pimpilai Wannasut
Paitoon Boonsong
Poom Prayoonphokkharat
Nittaya Keawprak
Anucha Watcharapasorn
author_facet Pimpilai Wannasut
Paitoon Boonsong
Poom Prayoonphokkharat
Nittaya Keawprak
Anucha Watcharapasorn
author_sort Pimpilai Wannasut
title Effects of sintering temperature on physical properties, phase, microstructure and oxygen stoichiometry of Na<inf>y</inf>CoO<inf>2</inf> ceramics
title_short Effects of sintering temperature on physical properties, phase, microstructure and oxygen stoichiometry of Na<inf>y</inf>CoO<inf>2</inf> ceramics
title_full Effects of sintering temperature on physical properties, phase, microstructure and oxygen stoichiometry of Na<inf>y</inf>CoO<inf>2</inf> ceramics
title_fullStr Effects of sintering temperature on physical properties, phase, microstructure and oxygen stoichiometry of Na<inf>y</inf>CoO<inf>2</inf> ceramics
title_full_unstemmed Effects of sintering temperature on physical properties, phase, microstructure and oxygen stoichiometry of Na<inf>y</inf>CoO<inf>2</inf> ceramics
title_sort effects of sintering temperature on physical properties, phase, microstructure and oxygen stoichiometry of na<inf>y</inf>coo<inf>2</inf> ceramics
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85056359726&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/62577
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