Understanding ordered structure in hematite nanowhiskers synthesized via thermal oxidation of iron-based substrates
Hematite (α-Fe2O3) nanowhiskers (NWs) with (001) basal faces synthesized via thermal oxidation of iron-based substrates are known to contain an ordered structure. The ordered structure has been identified to be related to oxygen vacancy ordering. However, the cause of its formation remains a mystery...
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doaj-4a33f0ece4044e5086edf84476e45d682020-11-25T03:33:41ZengElsevierMaterials & Design0264-12752020-06-01191Understanding ordered structure in hematite nanowhiskers synthesized via thermal oxidation of iron-based substratesMing-Wei Lai0Hiroki Kurata1Institute for Chemical Research, Kyoto University, Uji, Kyoto 6110011, JapanCorresponding author.; Institute for Chemical Research, Kyoto University, Uji, Kyoto 6110011, JapanHematite (α-Fe2O3) nanowhiskers (NWs) with (001) basal faces synthesized via thermal oxidation of iron-based substrates are known to contain an ordered structure. The ordered structure has been identified to be related to oxygen vacancy ordering. However, the cause of its formation remains a mystery. In this study, with a high-resolution transmission electron microscopy (HR-TEM) investigation based on negative-Cs imaging (NCSI) and atomic-column position analysis, we observed tensile strain in the above-mentioned α-Fe2O3 NWs and revealed that the ordered structure was actually periodic interplanar gap expansions induced by oxygen vacancy accumulations. These findings were further confirmed in a monochromated electron energy loss spectroscopy (EELS) analysis of the α-Fe2O3 NWs. The EELS data indicated that, in comparison to pristine α-Fe2O3, the α-Fe2O3 NWs possessed expanded average FeO and OO interatomic distances and were oxygen-deficient. Clarifying oxygen deficiency in the α-Fe2O3 NWs was not attributed to an insufficient oxygen supply during the NW growth, we concluded the ordered structure formed to accommodate tensile strain in the α-Fe2O3 NWs. This work demonstrates the applicability of integrating NCSI and monochromated EELS for the examination of strain-induced microstructural and microchemical variations in lightly strained metal oxides.http://www.sciencedirect.com/science/article/pii/S0264127520301301α-Fe2O3NanowhiskerOrdered structureNCSIMonochromated EELS |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ming-Wei Lai Hiroki Kurata |
spellingShingle |
Ming-Wei Lai Hiroki Kurata Understanding ordered structure in hematite nanowhiskers synthesized via thermal oxidation of iron-based substrates Materials & Design α-Fe2O3 Nanowhisker Ordered structure NCSI Monochromated EELS |
author_facet |
Ming-Wei Lai Hiroki Kurata |
author_sort |
Ming-Wei Lai |
title |
Understanding ordered structure in hematite nanowhiskers synthesized via thermal oxidation of iron-based substrates |
title_short |
Understanding ordered structure in hematite nanowhiskers synthesized via thermal oxidation of iron-based substrates |
title_full |
Understanding ordered structure in hematite nanowhiskers synthesized via thermal oxidation of iron-based substrates |
title_fullStr |
Understanding ordered structure in hematite nanowhiskers synthesized via thermal oxidation of iron-based substrates |
title_full_unstemmed |
Understanding ordered structure in hematite nanowhiskers synthesized via thermal oxidation of iron-based substrates |
title_sort |
understanding ordered structure in hematite nanowhiskers synthesized via thermal oxidation of iron-based substrates |
publisher |
Elsevier |
series |
Materials & Design |
issn |
0264-1275 |
publishDate |
2020-06-01 |
description |
Hematite (α-Fe2O3) nanowhiskers (NWs) with (001) basal faces synthesized via thermal oxidation of iron-based substrates are known to contain an ordered structure. The ordered structure has been identified to be related to oxygen vacancy ordering. However, the cause of its formation remains a mystery. In this study, with a high-resolution transmission electron microscopy (HR-TEM) investigation based on negative-Cs imaging (NCSI) and atomic-column position analysis, we observed tensile strain in the above-mentioned α-Fe2O3 NWs and revealed that the ordered structure was actually periodic interplanar gap expansions induced by oxygen vacancy accumulations. These findings were further confirmed in a monochromated electron energy loss spectroscopy (EELS) analysis of the α-Fe2O3 NWs. The EELS data indicated that, in comparison to pristine α-Fe2O3, the α-Fe2O3 NWs possessed expanded average FeO and OO interatomic distances and were oxygen-deficient. Clarifying oxygen deficiency in the α-Fe2O3 NWs was not attributed to an insufficient oxygen supply during the NW growth, we concluded the ordered structure formed to accommodate tensile strain in the α-Fe2O3 NWs. This work demonstrates the applicability of integrating NCSI and monochromated EELS for the examination of strain-induced microstructural and microchemical variations in lightly strained metal oxides. |
topic |
α-Fe2O3 Nanowhisker Ordered structure NCSI Monochromated EELS |
url |
http://www.sciencedirect.com/science/article/pii/S0264127520301301 |
work_keys_str_mv |
AT mingweilai understandingorderedstructureinhematitenanowhiskerssynthesizedviathermaloxidationofironbasedsubstrates AT hirokikurata understandingorderedstructureinhematitenanowhiskerssynthesizedviathermaloxidationofironbasedsubstrates |
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