Structural characterization and phase transformations in metal oxide fi lms synthesized by Successive Ionic Layer Deposition (SILD) method
In this paper the peculiarities of phase composition and morphology of metal oxides synthesized by successive ionic layer deposition (SILD) method are discussed. The main attention is focused on SnO2–based metal oxides, which are promising materials for gas sensor applications. FTIR spectroscopy has...
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University of Novi Sad
2009-06-01
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doaj-8a9941fdf3df49acb95c08c693544fa82020-11-25T00:25:44ZengUniversity of Novi SadProcessing and Application of Ceramics1820-61312009-06-0131-21928Structural characterization and phase transformations in metal oxide fi lms synthesized by Successive Ionic Layer Deposition (SILD) methodGhenadii KorotcenkovSang Do HanBeongki ChoValeri TolstoyIn this paper the peculiarities of phase composition and morphology of metal oxides synthesized by successive ionic layer deposition (SILD) method are discussed. The main attention is focused on SnO2–based metal oxides, which are promising materials for gas sensor applications. FTIR spectroscopy has shown that the precipitates of metal oxides, deposited by SILD method, are hydroxide, peroxide or hydrated metal oxide-based compounds. After annealing at relatively low temperatures (200–400°C) these compounds release both water and peroxide oxygen and transform into corresponding oxides. According to XRD, SEM and AFM measurements it was confi rmed that deposited fi lms had fi ne-dispersed structures. Only after annealing at Tan>500°C, XRD diffraction peaks, typical for nanocrystalline material with grain size < 6–8 nm, were observed. High roughness and high degree of agglomeration are important peculiarities of metal oxides deposited by SILD. Metal oxide fi lms consist of spherical agglomerates. Degree of agglomeration of the fi lms and agglomerate size could be controlled. It was found that introduction of various additives in the solution for SILD could sufficiently change the microstructure of synthesized metal oxides.http://www.tf.uns.ac.rs/publikacije/PAC/pdf/38%20PAC%2004.pdfMetal oxideNanolayersMicrostructureCompositionCharacterization |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ghenadii Korotcenkov Sang Do Han Beongki Cho Valeri Tolstoy |
spellingShingle |
Ghenadii Korotcenkov Sang Do Han Beongki Cho Valeri Tolstoy Structural characterization and phase transformations in metal oxide fi lms synthesized by Successive Ionic Layer Deposition (SILD) method Processing and Application of Ceramics Metal oxide Nanolayers Microstructure Composition Characterization |
author_facet |
Ghenadii Korotcenkov Sang Do Han Beongki Cho Valeri Tolstoy |
author_sort |
Ghenadii Korotcenkov |
title |
Structural characterization and phase transformations in metal oxide fi lms synthesized by Successive Ionic Layer Deposition (SILD) method |
title_short |
Structural characterization and phase transformations in metal oxide fi lms synthesized by Successive Ionic Layer Deposition (SILD) method |
title_full |
Structural characterization and phase transformations in metal oxide fi lms synthesized by Successive Ionic Layer Deposition (SILD) method |
title_fullStr |
Structural characterization and phase transformations in metal oxide fi lms synthesized by Successive Ionic Layer Deposition (SILD) method |
title_full_unstemmed |
Structural characterization and phase transformations in metal oxide fi lms synthesized by Successive Ionic Layer Deposition (SILD) method |
title_sort |
structural characterization and phase transformations in metal oxide fi lms synthesized by successive ionic layer deposition (sild) method |
publisher |
University of Novi Sad |
series |
Processing and Application of Ceramics |
issn |
1820-6131 |
publishDate |
2009-06-01 |
description |
In this paper the peculiarities of phase composition and morphology of metal oxides synthesized by successive ionic layer deposition (SILD) method are discussed. The main attention is focused on SnO2–based metal oxides, which are promising materials for gas sensor applications. FTIR spectroscopy has shown that the precipitates of metal oxides, deposited by SILD method, are hydroxide, peroxide or hydrated metal oxide-based compounds. After annealing at relatively low temperatures (200–400°C) these compounds release both water and peroxide oxygen and transform into corresponding oxides. According to XRD, SEM and AFM measurements it was confi rmed that deposited fi lms had fi ne-dispersed structures. Only after annealing at Tan>500°C, XRD diffraction peaks, typical for nanocrystalline material with grain size < 6–8 nm, were observed. High roughness and high degree of agglomeration are important peculiarities of metal oxides deposited by SILD. Metal oxide fi lms consist of spherical agglomerates. Degree of agglomeration of the fi lms and agglomerate size could be controlled. It was found that introduction of various additives in the solution for SILD could sufficiently change the microstructure of synthesized metal oxides. |
topic |
Metal oxide Nanolayers Microstructure Composition Characterization |
url |
http://www.tf.uns.ac.rs/publikacije/PAC/pdf/38%20PAC%2004.pdf |
work_keys_str_mv |
AT ghenadiikorotcenkov structuralcharacterizationandphasetransformationsinmetaloxidefilmssynthesizedbysuccessiveioniclayerdepositionsildmethod AT sangdohan structuralcharacterizationandphasetransformationsinmetaloxidefilmssynthesizedbysuccessiveioniclayerdepositionsildmethod AT beongkicho structuralcharacterizationandphasetransformationsinmetaloxidefilmssynthesizedbysuccessiveioniclayerdepositionsildmethod AT valeritolstoy structuralcharacterizationandphasetransformationsinmetaloxidefilmssynthesizedbysuccessiveioniclayerdepositionsildmethod |
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