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Abstrakty
Dielectric ceramics samples of barium titanium oxide doped with samarium, having a complex structural formula of Ba2-xSm4+2x/3Ti8O24 (referred to as BST), were fabricated by a high temperature solid-state reaction technique with varying x (0.0, 0.2, 0.4, 0.6). X-ray diffraction technique was used to check the formation of particular phases. Scanning electron microscope technique was used to study the surface morphology of the samples. The samples were studied in a temperature range of 298 K to 623 K and frequency range of 10 KHz to 1 MHz. The dielectric constant (εr), loss tangent (tanδ), and AC conductivity (σAC) were measured on sintered disks of BST samples. The DC resistivity of different compositions was measured at room temperature. Detailed studies of dielectric and electrical properties showed that these properties are strongly dependent on composition, frequency and temperature. The compounds showed stable behavior in lower temperature range (up to 523 K), therefore, they can be used in practical applications in this temperature range.
Wydawca
Czasopismo
Rocznik
Tom
Strony
268--277
Opis fizyczny
Bibliogr. 22 poz., rys., tab.
Twórcy
autor
- Department of Electronics Technology, Guru Nanak Dev University, Amritsar, Punjab, India
autor
- Department of Electronics and Communication Engineering, Punjab Technical University, PIT University Campus, Kapurthala, India
autor
- Department of Electronics Technology, Guru Nanak Dev University, Amritsar, Punjab, India
Bibliografia
- [1] NARANG S.B., BAHEL S., J. Ceram. Process. Res., 11 (3) (2010), 316.
- [2] CHEREMISINOFF N.P. (Ed.), Handbook of Ceramics and Composites, Synthesis and Properties, Marcel Dekker Inc., 1990.
- [3] HUANG C.-L., CHEN Y.-C., Mat. Sci. Eng. A-Struct., 345 (1 – 2) (2003), 106.
- [4] OHSATO H., OHHASHI T., KATO H., NISHIGAKI S., OKUDA T., Jpn. J. Appl. Phys., 34 (1995), 5413.
- [5] HIRANO S.I., HAYASHI T., HATTORI A., J. Am. Ceram. Soc., 77 (1991), 1320.
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- [8] NARANG S.B., KAUR D., Integr. Ferroelectr., 105 (1) (2009), 87.
- [9] NARANG S.B., KAUR D., THIND K.S., J. Ceram. Process. Res., 7 (1) (2006), 31.
- [10] KUMAR G., SHARMA S., KOTNASM R.K., SHAH J., SHIRSATH S.E., BATOO K.M., SINGH M., J. Mol. Struct., 1051 (2013), 336.
- [11] ALEXANDRU H.V., BERBECARU C., IOACHIM A., TOASCSEN M.I., NEDELCU L., GHETU D., Mater. Sci. Eng. B-Adv., 109 (2004), 152.
- [12] OHSATO H., OHHASHI T., NISHIGAKI S., OKUDA T., SUMIYA K., SUZUKI S., Jpn. J. Appl. Phys., 32 (1993),4323.
- [13] ARSHAD M., AHMED A.S., AZAM A., NAQVI A.H., J. Alloy. Comp., 577 (2013), 469.
- [14] KYRITSIS A., PISSIS P., GRAMMATIKAKIS J., J. Polym. Sci. Pol. Phys., 33 (1995), 1737.
- [15] MOULSON A.J., HERBERT J.M., Electroceramics: Materials, Properties and Application, Wiley, London, 2003.
- [16] CHOUDHARY R.N.P., SUTAR B.C., DAS PIYUSH R., Ceram. Int., 40 (2014), 7791.
- [17] SABESTIAN M.T., Dielectric Materials for Wireless Communication, Elsevier, New York 2008.
- [18] TZING W.H., TUAN W.H., LIN H.L., Ceram. Int., 25 (5) (1999), 425.
- [19] SRINIVAS K., SARAH P., SURYANARAYANA S.V., B. Mater. Sci., 26 (2) (2003), 247.
- [20] CHAOUCHI A., ZIDI N., D’ASTORG S., RGUTI M., COURTOIS C., J. Alloy. Compd., 590 (2014), 557.
- [21] POLLOCK D.D., Physical properties of Materials for Engineers, CRC Press, Boca Raton, 1976.
- [22] KAUR D., NARANG S. B., SINGH K., Ceram. Int., 33 (2) (2007), 249.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-897a5326-7599-443e-8253-b1c9fb75cf51