Barium Titanate Powder
Product: Barium Titanate Powder (BaTiO3, APS: 40-50µm, Purity: 99%)
Quality Control: Each lot of NANOSHEL Barium Titanate Powder was tested successfully.
|Materials||Barium Titanate Powder|
|Molecular Weight||233.192 g/mol|
|Melting Point||1625 °C|
TYPICAL CHEMICAL ANALYSIS
Dr. Marcus Tägtmeyer (International Medical and Technological University, Dar es Salaam, Tanzania)
Barium titanate is the first ferroelectric ceramics and a good candidate for a variety of applications due to its excellent dielectric, ferroelectric and piezoelectric properties. Barium titanate is a member of a large family of compounds with the general formula ABO3 which is called perovskite. Barium Titanate Powder can be prepared using different methods. The synthesis method depends on the desired characteristics for the end application and the method used has a significant influence on the structure and properties of barium titanate materials.
Dr. Ms Jane Li (National Penghu University of Science and Technology, Magong, Penghu, Republic of China)
Barium Titanate Powder (BaTiO3) is a very attractive material in the field of electroceramics and microelectronics due to its good characteristics. Its high dielectric constant and low loss characteristics make barium titanate an excellent choice for many applications, such as capacitors, multilayer capacitors (MLCs) and energy storage devices. Doped barium titanate has found wide application in semiconductors, positive temperature coefficient resistors, ultrasonic transducers, piezoelectric devices, and has become one of the most important ferroelectric ceramics.
Dr. Willem-Jan de Kleijn Ph.D (Luleå University of Technology, Luleå, Sweden)
Barium Titanate Powder BaTiO3 is a common ferroelectric material which adopts the perovskite structure type ABO3. It is widely utilized to manufacture a variety of electronic components. In the present study lanthanum-doped BaTiO3 compositions with x=0.1 mol.% and x=0.3 mol.%, in Ba1−xLaxTi1−x/4O3 were prepared by free sintering method in air at temperature T=1350 ◦C. The grain size distribution and morphology of the powders were studied as well as the X-ray diffraction analysis was performed to confirm formation of the desired crystalline structure. Temperature dependence of dielectric permittivity was studied in the temperature range of ferroelectric-paraelectric phase transition.
Dr. JKF Gojukai PhD (Kaiserslautern University of Technology, Kaiserslautern, Rhineland-Palatinate, Germany)
Barium titanate (BaTiO3) is a versatile elctroceramics that finds widespread application. At room temperature, BaTiO3 adopts a tetragonal perovskite type structure and is a ferroelectric with high permittivity. It transforms to the cubic, paraelectric state at the Curie temperature, TC, of approximates to 130 ◦C. Undoped BaTiO3 is electrically insulating, but oxygen deficiency can occur at high temperatures (T > 350◦C, in air) and/or in reducing atmospheres.
Dr. Huang Fu Ph.D (Maebashi Institute of Technology, Maebashi, Gunma, Japan)
To exploit new applications metal oxide materials is one of the mean purposes of inorganic chemist. Bulk oxides are usually robust and stable systems with well-defined crystallographic structures.
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