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Stabilization Mechanism of the Tetragonal Structure in a Hydrothermally Synthesized BaTiO3 Nanocrystal
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Document Title
Stabilization Mechanism of the Tetragonal Structure in a Hydrothermally Synthesized BaTiO3 Nanocrystal
Author
Hongo K, Kurata S, Jomphoak A, Inada M, Hayashi K, Maezono R
Name from Authors Collection
Affiliations
Japan Advanced Institute of Science & Technology (JAIST); Japan Advanced Institute of Science & Technology (JAIST); Kyushu University; Kyushu University; National Science & Technology Development Agency - Thailand; National Electronics & Computer Technology Center (NECTEC); National Institute for Materials Science; RIKEN; Japan Science & Technology Agency (JST)
Type
Article
Source Title
INORGANIC CHEMISTRY
Year
2018
Volume
57
Issue
9
Page
5413-5419
Open Access
hybrid, Green Submitted
Publisher
AMER CHEMICAL SOC
DOI
10.1021/acs.inorgchem.8b00381
Format
Abstract
Higher OH concentration is identified in tetragonal barium titanate (BaTiO3) nanorods synthesized by a hydrothermal method with a 10 vol % ethylene glycol solvent (Inada, M.; et al. Ceram. Int. 2015, 41, 5581-5587). This is apparently inconsistent with the known fact that higher OH concentration in the conventional hydrothermal synthesis makes pseudocubic BaTiO3 nanocrystals more stable than the tetragonal one. To understand where and how the introduced OH anions are located and behave in the nanocrystals, we applied ab initio analysis to several possible microscopic geometries of OH locations, confirming the relative stability of the tetragonal distortion over the pseudocubic one because of the preference of trans-type configurations of OH anions. We also performed Fourier transform infrared and X-ray diffraction analysis, all being consistent with the microscopic picture established by the ab initio geometrical optimizations.
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Funding Sponsor
MEXT [JP16H06439, JP16H06440, 17H05478]; FLAGSHIP [hp170269, hp180175]; KAKENHI [17K17762]; PRESTO [JPMJPR16NA]; Materials Research by Information Integration Initiative (MI2I) project of the Support Program for Starting Up Innovation Hub from JST; MEXT-KAKENHI [16KK0097]; Toyota Motor Corp.; I-O DATA Foundation; Air Force Office of Scientific Research [AFOSR-AOARD/FA2386-17-1-4049]; Elements Strategy Initiative to Form Core Research Center, MEXT, Japan
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