Teerapon Yamwong
Khon Kaen University
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Featured researches published by Teerapon Yamwong.
Applied Physics Letters | 2009
Sitchai Hunpratub; Prasit Thongbai; Teerapon Yamwong; Rattikorn Yimnirun; Santi Maensiri
Single-phase multiferroic BiFeO3 ceramics were fabricated using pure precipitation-prepared BiFeO3 powder. Dielectric response of BiFeO3 ceramics was investigated over a wide range of temperature and frequency. Our results reveal that the BiFeO3 ceramic sintered at 700 °C exhibited high dielectric permittivity, and three dielectric relaxations were observed. A Debye-type dielectric relaxation at low temperatures (−50 to 20 °C) is attributed to the carrier hopping process between Fe2+ and Fe3+. The other two dielectric relaxations at the temperature ranges 30–130 °C and 140–200 °C could be due to the grain boundary effect and the defect ordering and/or the conductivity, respectively.
Journal of Physics: Condensed Matter | 2008
Prasit Thongbai; Suwat Tangwancharoen; Teerapon Yamwong; Santi Maensiri
Giant dielectric permittivity (Li, Ti)-doped NiO (LTNO) ceramics are prepared by a simple PVA sol–gel method. The dielectric properties are investigated as a function of frequency (102–106 Hz) at different temperatures (233–473 K). The concentration of Li has a remarkable effect on the dielectric properties of the LTNO ceramics. The modified Cole–Cole equation, including the conductivity term, is used to describe the experimental dielectric spectra of a high permittivity response with excellent agreement over a wide range of frequencies (103–106 Hz) and temperatures (233–313 K). A frequency dielectric dispersion phenomenon in an LTNO ceramic is also analyzed by impedance spectroscopy. A separation of the grain and grain boundary properties is achieved using an equivalent circuit model. The grain and grain boundary conduction and the dielectric relaxation time of the Li0.05Ti0.02Ni0.93O follows the Arrhenius law associated with estimated activation energies of 0.216, 0.369 and 0.391 eV, respectively. Through the analysis by the modified relaxation model and impedance spectroscopy, it is strongly believed that the high dielectric permittivity response of the LTNO is not only contributed by the space charge polarization (Maxwell–Wagner polarization) mechanism at low frequency regions, but also by the defect-dipole polarization mechanism at high frequency regions.
Journal of Applied Physics | 2012
Prasit Thongbai; Jutapol Jumpatam; Bundit Putasaeng; Teerapon Yamwong; Santi Maensiri
The origin of giant dielectric relaxation behavior and related electrical properties of grains and grain boundaries (GBs) of W6+-doped CaCu3Ti4O12 ceramics were studied using admittance and impedance spectroscopy analyses based on the brick–work layer model. Substitution of 1.0 at. % W6+ caused a slight decrease in GB capacitance, leading to a small decrease in the low-frequency dielectric constant. Surprisingly, W6+ doping ions have remarkable effects on the macroscopic dielectric relaxation and electrical properties of grains. X-ray photoelectron spectroscopy analysis suggested that the large enhancements of grain resistance and conduction activation energy of grains for the W6+-doped CaCu3Ti4O12 ceramic are caused by reductions in concentrations of Cu3+ and Ti3+ ions. Considering variation of dielectric properties together with changes in electrical properties of the W6+-doped CaCu3Ti4O12 ceramic, correlation between giant dielectric properties and electrical responses of grains and GBs can be describe...
Journal of Applied Physics | 2008
Prasit Thongbai; Santi Maensiri; Teerapon Yamwong
Giant dielectric constant e′ of ∼(2.8–3.7)×104 was observed in high purity CuO (99.999%) ceramics with grain sizes of 4.57±1.71 and 9.57±3.01 μm. The e′ and Ea increase with an increase in grain size due to the different electrical properties in the grains. The high dielectric response observed in the CuO ceramics can be described by the internal barrier layer capacitance model. The resistance of grain boundaries (Rgb) and the dielectric constant of the CuO samples decrease with increasing dc bias due to the decrease in grain boundaries capacitance, whereas the resistance of grains (Rg) remains constant.
Journal of Applied Physics | 2008
Prasit Thongbai; Teerapon Yamwong; Santi Maensiri
We reported the effects of grain size on high dielectric and related electrical properties of Li0.05Ti0.02Ni0.93O (LTNO) ceramics, which were prepared by a direct thermal decomposition method. The analysis of complex impedance indicated that these LTNO ceramics were electrically heterogeneous consisting of conducting grains and insulating grain boundaries (GBs). Interestingly, our results revealed that the dielectric permittivity (e′) increases with the increase in grain size, which can be well described by Maxwell–Wagner relaxation model. Furthermore, we also found that the activation energy required for relaxation process (Ea) and related activation energy of the conductivity in the grain interior (Eg) decreased with the increase in grain size. These results suggested that the different microstructures resulted in chemical change (e.g., oxygen vacancies) inside the grains, leading to the changes in electrical properties of the LTNO ceramics.
Applied Physics Letters | 2007
Santi Maensiri; Prasit Thongbai; Teerapon Yamwong
The giant values of the dielectric permittivity as high as e′∼105 at various frequencies (f=100kHz–1MHz) over a broad temperature range of −50–190°C have been observed in polycrystalline CaCu3Ti4O12 ceramics that are reinforced with small amount of Li0.3Ti0.02Ni0.68O nanoparticles of 39nm. This enormous dielectric permittivity is even higher than that of CaCu3Ti4O12 single crystals. The dielectric behavior of CaCu3Ti4O12 and CaCu3Ti4O12–Li0.3Ti0.02Ni0.68O composites exhibits Debye-like relaxation which can be interpreted based on Maxwell-Wagner model. The dielectric dispersion of the composites was discussed based on internal boundary layer capacitor effect.
Applied Physics Letters | 2009
Prasit Thongbai; Teerapon Yamwong; Santi Maensiri
Electrical properties of giant-permittivity core/shell structured Li0.05FexNi0.95−xO (LFNO) are studied as functions of frequency, temperature, and dc bias. Three electrical responses of depletion surface (DS), grain boundary (GB), and bulk grain are detected in the LFNO ceramics. The DS and GB effects can be separated by removing the surface samples, whereas the grain effect is extracted by applying dc bias. It is found that the interfacial polarizations at the DSs and GBs are suppressed by applied voltages. Our results suggest that the polarization relaxation in the LFNO ceramics is closely related to the electrical response inside the grains.
Applied Physics Letters | 2009
Prasit Thongbai; Sarawut Pongha; Teerapon Yamwong; Santi Maensiri
We report the giant dielectric response and electrical properties of Li0.05B0.02Ni0.93O (B=Fe, Ti, and V) ceramics prepared by a polymer pyrolysis route. The giant dielectric response in these materials can be ascribed based on the Maxwell–Wagner polarization and thermally activated mechanisms. It is found that Fe, Ti, and V doping has a strong effect on the microstructure and the conduction of grains and grain boundaries of these NiO-based ceramic systems, which make large contribution to their dielectric properties.
Transactions of Nonferrous Metals Society of China | 2011
Atchara Khamkongkaeo; Pongsakorn Jantaratana; Chitnarong Sirisathitkul; Teerapon Yamwong; Santi Maensiri
Abstract CoFe 2 O 4 -BaTiO 3 particulate composites were prepared by wet ball milling method, their magnetoelectric (ME) effect was studied as a function of their constituents and modulation frequency. The results show that the ME coefficient increases as a function of modulation frequency from 400 to 1000 Hz and the ME characteristics of ME curves are also modified because the electrical conductivity of the CoFe 2 O 4 phase is sensitive to the increase in frequency between 400 and 1 000 Hz. The third phase Ba 2 Fe 2 O 5 formed during the sintering tends to reduce the ME effect.
Japanese Journal of Applied Physics | 2014
Keerati Meeporn; Teerapon Yamwong; Prasit Thongbai
La1.7Sr0.3NiO4 nanocrystalline powders were successfully prepared by a combustion method using a urea as fuel. A pure phase of La1.7Sr0.3NiO4 powders was obtained by firing the precursor at a relatively low temperature and short reaction time of 1000 °C for 2 h, whereas a pure La1.7Sr0.3NiO4 phase prepared by a conventional solid-state reaction method was obtained at a temperature higher than 1200 °C for 12 h. Sintered La1.7Sr0.3NiO4 ceramics were found to have a highly dense ceramic microstructure. Interestingly, all the ceramics exhibited very high dielectric constants of about 4.3 × 105–1.05 × 106 at room temperature and 1 kHz. Using impedance spectroscopy, it was observed that the low-frequency loss tangent and DC conductivity data were associated with the electrical response at grain boundaries. The extremely high dielectric behavior of the La1.7Sr0.3NiO4 ceramics was attributed to the small polaronic hopping process.
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Thailand National Science and Technology Development Agency
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