Intercalation of Tris(2,2′-bipyridine)ruthenium(II) into a Layered Perovskite Derived from Aurivillius Phase Bi2SrTa2O9

2005 ◽  
Vol 34 (10) ◽  
pp. 1406-1407 ◽  
Author(s):  
Zhiwei Tong ◽  
Shinsuke Takagi ◽  
Tetsuya Shimada ◽  
Hiroshi Tachibana ◽  
Haruo Inoue
2009 ◽  
Vol 117 (1371) ◽  
pp. 1268-1272 ◽  
Author(s):  
Jum Suk JANG ◽  
Sang Su YOON ◽  
Pramod H. BORSE ◽  
Kwon Taek LIM ◽  
Tae Eun HONG ◽  
...  

ChemInform ◽  
2010 ◽  
Vol 32 (52) ◽  
pp. no-no
Author(s):  
Yu Tsunoda ◽  
Masashi Shirata ◽  
Wataru Sugimoto ◽  
Zheng Liu ◽  
Osamu Terasaki ◽  
...  

2000 ◽  
Vol 658 ◽  
Author(s):  
Masashi Shirata ◽  
Yu Tsunoda ◽  
Wataru Sugimoto ◽  
Yoshiyuki Sugahara

ABSTRACTA protonated form of a layered perovskite was prepared from an Aurivillius phase Bi2SrNaNb3O12via acid treatments, and the effect of the type of mineral acids was investigated. The treatment with HX (X = Cl, Br, I) resulted in the formation of a protonated form H1.8[Sr0.8Bi0.2NaNb3O10], while no reactions were observed for HNO3 and H2SO4 under the present experimental conditions. All the products obtained by HX-treatments exhibited layered structures and the structures of the perovskite-like slabs were preserved.


Author(s):  
N. A. Lomanova

The process of formation by the chemical coprecipitation method of nanoceramic material based on layered perovskite-like complex oxide Bi13Fe5Ti6O39 with the structure of the Aurivillius phase has been described. The temperatures of the onset of formation, the onset of decomposition, and activation of sintering, as well as the coefficient of linear thermal extension of the material, have been determined. Technological parameters for the synthesis of the material with a high yield of the target product and the ability to vary the crystallite size in the range of 70‒85 nm have been determined.


2001 ◽  
Vol 40 (23) ◽  
pp. 5768-5771 ◽  
Author(s):  
Yu Tsunoda ◽  
Masashi Shirata ◽  
Wataru Sugimoto ◽  
Zheng Liu ◽  
Osamu Terasaki ◽  
...  

Crystals ◽  
2020 ◽  
Vol 11 (1) ◽  
pp. 23
Author(s):  
Shujie Sun ◽  
Xiaofeng Yin

Driven by potentially photo-electro-magnetic functionality, Bi-containing Aurivillius-type oxides of binary Bi4Ti3O12-BiFeO3 system with a general formula of Bin+1Fen−3Ti3O3n+3, typically in a naturally layered perovskite-related structure, have attracted increasing research interest, especially in the last twenty years. Benefiting from highly structural tolerance and simultaneous electric dipole and magnetic ordering at room temperature, these Aurivillius-phase oxides as potentially single-phase and room-temperature multiferroic materials can accommodate many different cations and exhibit a rich spectrum of properties. In this review, firstly, we discussed the characteristics of Aurivillius-phase layered structure and recent progress in the field of synthesis of such materials with various architectures. Secondly, we summarized recent strategies to improve ferroelectric and magnetic properties, consisting of chemical modification, interface engineering, oxyhalide derivatives and morphology controlling. Thirdly, we highlighted some research hotspots on magnetoelectric effect, catalytic activity, microwave absorption, and photovoltaic effect for promising applications. Finally, we provided an updated overview on the understanding and also highlighting of the existing issues that hinder further development of the multifunctional Bin+1Fen−3Ti3O3n+3 materials.


2019 ◽  
Author(s):  
Kazuki Morita ◽  
Ji-Sang Park ◽  
Sunghyun Kim ◽  
Kenji Yasuoka ◽  
Aron Walsh

The Aurivillius phases of complex bismuth oxides have attracted considerable attention due to their lattice polarization (ferroelectricity) and photocatalytic activity. We report a first-principles exploration of Bi<sub>2</sub>WO<sub>6</sub> and the replacement of W<sup>6+</sup> by pentavalent (Nb<sup>5+</sup>, Ta<sup>5+</sup>) and tetravalent (Ti<sup>4+</sup>, Sn<sup>4+</sup>) ions, with charge neutrality maintained by the formation of a mixed-anion oxyhalide sublattice. We find that Bi<sub>2</sub>SnO<sub>4</sub>F<sub>2</sub> is thermodynamically unstable, in contrast to Bi<sub>2</sub>TaO<sub>5</sub>F, Bi<sub>2</sub>NbO<sub>5</sub>F and Bi<sub>2</sub>TiO<sub>4</sub>F<sub>2</sub>. The electric dipoles introduced by chemical substitutions in the parent compound are found to suppress the spontaneous polarization from 61.55 μC/cm<sup>2</sup> to below 15.50 μC/cm<sup>2</sup>. Analysis of the trends in electronic structure, surface structure, and ionization potentials are reported. This family of materials can be further extended with control of layer thicknesses and choice of compensating halide species.<br>


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