Parallel evolution of microstructure, thermophysical and electrical properties of undoped and La-doped strontium titanate

Thermophysical and electrical properties of undoped and lanthanum-doped strontium titanate have been largely focusing on the final product of the final sintering temperature, thus neglecting the parallel evolution of microstructure and material properties at various intermediate sintering temperatur...

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Main Author: Ibrahim, Idza Riati
Format: Thesis
Language:English
Published: 2016
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Online Access:http://psasir.upm.edu.my/id/eprint/69978/1/ITMA%202016%2019%20IR.pdf
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spelling my-upm-ir.699782019-10-31T08:07:10Z Parallel evolution of microstructure, thermophysical and electrical properties of undoped and La-doped strontium titanate 2016-11 Ibrahim, Idza Riati Thermophysical and electrical properties of undoped and lanthanum-doped strontium titanate have been largely focusing on the final product of the final sintering temperature, thus neglecting the parallel evolution of microstructure and material properties at various intermediate sintering temperatures. Therefore, much possible essential information has been neglected, thus reducing the capabilities of producing good fundamental scientific knowledge of the microstructure-material properties, particularly in thermophysical and electrical properties. In order to filling up the vacuum, a systematic development study from nanometric to micronic grains with parallel evolution of thermophysical and electrical properties has been elucidated. Strontium titanate, undoped and lanthanum-doped, have been prepared via the high energy ball milling and followed by sintering from 500 to 1400°C for different microstructural features. The XRD patterns showed an improvement of crystallinity from amorphous + crystalline mixture phases to a complete polycrystalline phase with increasing sintering temperature. The Raman spectra showed the presence of second-order features for fully-formed phase. ESR spectra revealed the paramagnetic defects existed in undoped and lanthanum-doped strontium titanate. FESEM micrographs showed the grains evolved from 38.3 nm to 2.6 μm for without presintered strontium titanate and 38.0 nm to 9.1 μm for presintered strontium titanate. The grains size fluctuated, attributing to carbonate decomposition but became larger as the sintering temperature increased from 800 to 1400°C due to the grain growth phenomenon. Doping of lanthanum has tendency to inhibit the grain growth where significant reduction of grain size (range from 34 nm to 0.47 μm) could be observed. Without the presence of other leading factors such as porosity, thermal diffusivity and conductivity increased with increased grain size with the maximum value of 2.97 mm2/s and 7.09 W/m.K, respectively, exhibited by the presintered strontium titanate sample. The electrical conductivity was improved with increased grain size due to reduced amount of grain boundary resistivity. It can be concluded that the phonon scattering mechanisms and electrical transport properties were intrinsically and extrinsically influenced by several factors. Intrinsic contribution comes from the crystal structure evolving from highly amorphous to a complete polycrystalline strontium titanate. Extrinsic contributions by the microstructure, particularly from the impurities, grain boundaries, grain size, density and the porosity influenced the phonon-impurities, phonon-defects and phonon-boundaries scattering, so also the barrier to the flow of electrons. Superconductivity Materials - Electric properties 2016-11 Thesis http://psasir.upm.edu.my/id/eprint/69978/ http://psasir.upm.edu.my/id/eprint/69978/1/ITMA%202016%2019%20IR.pdf text en public doctoral Universiti Putra Malaysia Superconductivity Materials - Electric properties
institution Universiti Putra Malaysia
collection PSAS Institutional Repository
language English
topic Superconductivity
Materials - Electric properties

spellingShingle Superconductivity
Materials - Electric properties

Ibrahim, Idza Riati
Parallel evolution of microstructure, thermophysical and electrical properties of undoped and La-doped strontium titanate
description Thermophysical and electrical properties of undoped and lanthanum-doped strontium titanate have been largely focusing on the final product of the final sintering temperature, thus neglecting the parallel evolution of microstructure and material properties at various intermediate sintering temperatures. Therefore, much possible essential information has been neglected, thus reducing the capabilities of producing good fundamental scientific knowledge of the microstructure-material properties, particularly in thermophysical and electrical properties. In order to filling up the vacuum, a systematic development study from nanometric to micronic grains with parallel evolution of thermophysical and electrical properties has been elucidated. Strontium titanate, undoped and lanthanum-doped, have been prepared via the high energy ball milling and followed by sintering from 500 to 1400°C for different microstructural features. The XRD patterns showed an improvement of crystallinity from amorphous + crystalline mixture phases to a complete polycrystalline phase with increasing sintering temperature. The Raman spectra showed the presence of second-order features for fully-formed phase. ESR spectra revealed the paramagnetic defects existed in undoped and lanthanum-doped strontium titanate. FESEM micrographs showed the grains evolved from 38.3 nm to 2.6 μm for without presintered strontium titanate and 38.0 nm to 9.1 μm for presintered strontium titanate. The grains size fluctuated, attributing to carbonate decomposition but became larger as the sintering temperature increased from 800 to 1400°C due to the grain growth phenomenon. Doping of lanthanum has tendency to inhibit the grain growth where significant reduction of grain size (range from 34 nm to 0.47 μm) could be observed. Without the presence of other leading factors such as porosity, thermal diffusivity and conductivity increased with increased grain size with the maximum value of 2.97 mm2/s and 7.09 W/m.K, respectively, exhibited by the presintered strontium titanate sample. The electrical conductivity was improved with increased grain size due to reduced amount of grain boundary resistivity. It can be concluded that the phonon scattering mechanisms and electrical transport properties were intrinsically and extrinsically influenced by several factors. Intrinsic contribution comes from the crystal structure evolving from highly amorphous to a complete polycrystalline strontium titanate. Extrinsic contributions by the microstructure, particularly from the impurities, grain boundaries, grain size, density and the porosity influenced the phonon-impurities, phonon-defects and phonon-boundaries scattering, so also the barrier to the flow of electrons.
format Thesis
qualification_level Doctorate
author Ibrahim, Idza Riati
author_facet Ibrahim, Idza Riati
author_sort Ibrahim, Idza Riati
title Parallel evolution of microstructure, thermophysical and electrical properties of undoped and La-doped strontium titanate
title_short Parallel evolution of microstructure, thermophysical and electrical properties of undoped and La-doped strontium titanate
title_full Parallel evolution of microstructure, thermophysical and electrical properties of undoped and La-doped strontium titanate
title_fullStr Parallel evolution of microstructure, thermophysical and electrical properties of undoped and La-doped strontium titanate
title_full_unstemmed Parallel evolution of microstructure, thermophysical and electrical properties of undoped and La-doped strontium titanate
title_sort parallel evolution of microstructure, thermophysical and electrical properties of undoped and la-doped strontium titanate
granting_institution Universiti Putra Malaysia
publishDate 2016
url http://psasir.upm.edu.my/id/eprint/69978/1/ITMA%202016%2019%20IR.pdf
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