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Dielectric relaxation and study of electrical conduction mechanism in BaZr0.1Ti0.9O3 ceramics by correlated barrier hopping model


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[1] LEE W.H., SU C.Y., J. Am. Ceram. Soc., 90 (2007), 3345. Search in Google Scholar

[2] OHARA Y., KOUMOTO K., YANAGIDA H., J. Am. Ceram. Soc., 68 (1985), 108. Search in Google Scholar

[3] PARK J.H., KAWAKAMI Y., SUZUKI M., AKEDO J., Jpn. J. Appl. Phys., 50 (2011), 09ND19. Search in Google Scholar

[4] TANG P., TOWNER D.J., MEIER A.L., WESSELS B.W., Appl. Phys. Lett., 85 (2004), 4615. Search in Google Scholar

[5] FARHI R., MARSSI M., SIMON A., RAVEZ J., Eur. Phys. J. B., 9 (1999), 599. Search in Google Scholar

[6] DELUCA M., VASILESCU C.A., IANCULESCU A.C., BERGER D.C., CIOMAGA C.E., CURECHERIU L.P., STOLERIU L., GAJOVIC A., MITOSERIU L., GALASSI C., J. Eur. Ceram. Soc., 32 (2012), 3551. Search in Google Scholar

[7] TANG X.G., CHEW K.H., CHAN H.L.W., Acta. Mater., 52 (2004), 5177. Search in Google Scholar

[8] MOURA F., SIMÕES A.Z., AGUIAR E.C., NOGUEIRA I.C., ZAGHETE M.A., VARELA J.A., LONGO E., J. Alloy. Compd., 479 (2009), 280. Search in Google Scholar

[9] BHASKAR R.S., PRASAD R.K., RAMACHANDRA R.M.S., J. Alloy. Compd., 509 (2011), 1266. Search in Google Scholar

[10] BHASKAR R.S., PRASAD R.K., RAMACHANDRA R.M.S., J. Alloy. Compd., 481 (2009), 692. Search in Google Scholar

[11] SATEESH P., OMPRAKASH J., KUMAR G.S., PRASAD G., J. Adv. Dielectr., 5 (2015), 1550002. Search in Google Scholar

[12] NATH K.A., PRASAD K., Adv. Mater. Res., 2 (2012), 115. Search in Google Scholar

[13] KANG B.S., CHOI S.K., PARK C.H., J. Appl. Phys., 94 (2003), 1904. Search in Google Scholar

[14] ANG C., YU Z., CROSS L.E., Phys. Rev. B., 62 (2000), 228. Search in Google Scholar

[15] RODRIGUEZ-CARVAJAL J., An introduction to the program FullProf 2000, Laboratoire Léon Brillouin (CEACNRS) CEA/Saclay, France, 2001. Search in Google Scholar

[16] FERRARI M., LUTTEROTTI L., J. Appl. Phys., 76 (1994), 7246. Search in Google Scholar

[17] HSIAO Y.J., CHANG Y.H., FANG T.H., CHANG Y.S., Appl. Phys. Lett., 87 (2005), 142906. Search in Google Scholar

[18] JAWAHAR K., CHOUDHARY R.N.P., Solid State Commun., 142 (2007), 449. Search in Google Scholar

[19] PRASAD A., BASU A., Mater. Lett., 66 (2012), 1. Search in Google Scholar

[20] DUTTA A., BHARTI C., SINHA T.P., Mater. Res. Bull., 43 (2008), 1246. Search in Google Scholar

[21] FUNKE K., Prog. Solid State Chem., 22 (1993), 111. Search in Google Scholar

[22] JONSCHER A.K., Nature, 267 (1977), 673. Search in Google Scholar

[23] CHEN W., ZHU W., TAN O.K., CHEN X.F., J. Appl. Phys., 108 (2010), 034101. Search in Google Scholar

[24] PELAIZ-BARRANCO A., GUTIERREZ-AMADOR M.P., HUANOSTA A., VALENZUELA R., Appl. Phys. Lett., 73 (1998), 2039. Search in Google Scholar

[25] ALMOND D.P., BOWEN C.R., Phys. Rev. Lett., 92 (2004), 157601. Search in Google Scholar

[26] ISHII T., ABE T., SHIRAI H., Solid State Commun., 127 (2003), 737. Search in Google Scholar

[27] ELLIOTT S.R., Adv. Phys., 36 (1987), 135. Search in Google Scholar

[28] YOUSSEF A.A.A., Z. Naturforsch., 57a (2002), 263. Search in Google Scholar

[29] LONG A.R., Adv. Phys., 31 (1982), 553. Search in Google Scholar

[30] IMRAN Z., RAFIQ M.A., AHMAD M., RASOOL K., BATOOL S.S., HASAN M.M., AIP Adv., 3 (2013), 032146. Search in Google Scholar

[31] PRASAD K., BHAGAT S., AMARNATH K., CHOUDHARYS.N., YADAV K.L., Mater. Sci.-Poland, 28 (2010), 317. Search in Google Scholar

[32] SUBOHI O., KUMAR G.S., MALIK M.M., KURCHANIA R., J. Mater. Sci.-Mater. Electron., 26 (2015), 9342. Search in Google Scholar

[33] JONSCHER A.K., J. Mater. Sci., 16 (1981), 2037. Search in Google Scholar

[34] VERDIER C., MORRISON F.D., LUPASCU D.C., SCOTT J.F., J. Appl. Phys., 97 (2005), 024107. Search in Google Scholar

[35] SMYTH D.M., J. Electroceram., 11 (2003), 89. Search in Google Scholar

[36] MOOS R., HÄRDTL K.H., J. Appl. Phys., 80 (1996), 393. Search in Google Scholar

eISSN:
2083-134X
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
4 Hefte pro Jahr
Fachgebiete der Zeitschrift:
Materialwissenschaft, andere, Nanomaterialien, Funktionelle und Intelligente Materialien, Charakterisierung und Eigenschaften von Materialien