Phase and morphology evolution of (Na1-xKx)NbO3 powders related to calcinations and K2CO3 content

Sodium-potassium niobate ((Na1-xKx)NbO3) powders with x = 0.2, 0.4, 0.6 and 0.8 were prepared following the conventional mixed oxide method and characterized by TG-DTA, XRD and SEM techniques.The effects of calcination temperature, dwell time and K2CO3 content on phase formation behavior and morphol...

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Main Authors: Steven J. Milne, Winai Saengchote, Supasarote Muensit, Pornsuda Bomlai
Format: Article
Language:English
Published: Prince of Songkla University 2007-03-01
Series:Songklanakarin Journal of Science and Technology (SJST)
Subjects:
Online Access:http://www.sjst.psu.ac.th/journal/29_2_pdf/18sodium-potassium%20niobate_441-448.pdf
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spelling doaj-0526eb5b7bb549ce89dd876dafe3f7e02020-11-24T23:23:47ZengPrince of Songkla UniversitySongklanakarin Journal of Science and Technology (SJST)0125-33952007-03-01292441448Phase and morphology evolution of (Na1-xKx)NbO3 powders related to calcinations and K2CO3 contentSteven J. MilneWinai SaengchoteSupasarote MuensitPornsuda BomlaiSodium-potassium niobate ((Na1-xKx)NbO3) powders with x = 0.2, 0.4, 0.6 and 0.8 were prepared following the conventional mixed oxide method and characterized by TG-DTA, XRD and SEM techniques.The effects of calcination temperature, dwell time and K2CO3 content on phase formation behavior and morphology of the powders were investigated. The calcination temperature and dwell time were found tohave a pronounced effect on the phase formation of the calcined sodium-potassium niobate powders. It was found that the crystallized phase depended on calcination conditions. The high calcination temperature andlong dwell time clearly favored particle growth and the formation of large and hard agglomerates. All the (Na1-xKx)NbO3 powders showed a similar orthorhombic phase structure. The K2CO3 content significantlyaffected the calcination temperature and particle size and shape. Large particle size, cubic shape and a lower calcined condition were observed in (Na1-xKx)NbO3 powder with low K2CO3 content (x = 0.2).http://www.sjst.psu.ac.th/journal/29_2_pdf/18sodium-potassium%20niobate_441-448.pdfsodium-potassium niobatelead-free piezoelectric materialphase formationmorphology evolution
collection DOAJ
language English
format Article
sources DOAJ
author Steven J. Milne
Winai Saengchote
Supasarote Muensit
Pornsuda Bomlai
spellingShingle Steven J. Milne
Winai Saengchote
Supasarote Muensit
Pornsuda Bomlai
Phase and morphology evolution of (Na1-xKx)NbO3 powders related to calcinations and K2CO3 content
Songklanakarin Journal of Science and Technology (SJST)
sodium-potassium niobate
lead-free piezoelectric material
phase formation
morphology evolution
author_facet Steven J. Milne
Winai Saengchote
Supasarote Muensit
Pornsuda Bomlai
author_sort Steven J. Milne
title Phase and morphology evolution of (Na1-xKx)NbO3 powders related to calcinations and K2CO3 content
title_short Phase and morphology evolution of (Na1-xKx)NbO3 powders related to calcinations and K2CO3 content
title_full Phase and morphology evolution of (Na1-xKx)NbO3 powders related to calcinations and K2CO3 content
title_fullStr Phase and morphology evolution of (Na1-xKx)NbO3 powders related to calcinations and K2CO3 content
title_full_unstemmed Phase and morphology evolution of (Na1-xKx)NbO3 powders related to calcinations and K2CO3 content
title_sort phase and morphology evolution of (na1-xkx)nbo3 powders related to calcinations and k2co3 content
publisher Prince of Songkla University
series Songklanakarin Journal of Science and Technology (SJST)
issn 0125-3395
publishDate 2007-03-01
description Sodium-potassium niobate ((Na1-xKx)NbO3) powders with x = 0.2, 0.4, 0.6 and 0.8 were prepared following the conventional mixed oxide method and characterized by TG-DTA, XRD and SEM techniques.The effects of calcination temperature, dwell time and K2CO3 content on phase formation behavior and morphology of the powders were investigated. The calcination temperature and dwell time were found tohave a pronounced effect on the phase formation of the calcined sodium-potassium niobate powders. It was found that the crystallized phase depended on calcination conditions. The high calcination temperature andlong dwell time clearly favored particle growth and the formation of large and hard agglomerates. All the (Na1-xKx)NbO3 powders showed a similar orthorhombic phase structure. The K2CO3 content significantlyaffected the calcination temperature and particle size and shape. Large particle size, cubic shape and a lower calcined condition were observed in (Na1-xKx)NbO3 powder with low K2CO3 content (x = 0.2).
topic sodium-potassium niobate
lead-free piezoelectric material
phase formation
morphology evolution
url http://www.sjst.psu.ac.th/journal/29_2_pdf/18sodium-potassium%20niobate_441-448.pdf
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