Hostname: page-component-8448b6f56d-xtgtn Total loading time: 0 Render date: 2024-04-23T14:48:16.501Z Has data issue: false hasContentIssue false

Structural, AC conductivity and dielectric properties of Sr-La hexaferrite

Published online by Cambridge University Press:  22 February 2006

A. Singh
Affiliation:
Department of Physics, Guru Nanak Dev University, Amritsar, India
S. B. Narang*
Affiliation:
Department of Electronics and Technology, Guru Nanak Dev University, Amritsar, India
K. Singh
Affiliation:
Department of Physics, Guru Nanak Dev University, Amritsar, India
P. Sharma
Affiliation:
School of Physics and materials Science, Thapar Institute of Engineering and Technology, Patiala, India
O. P. Pandey
Affiliation:
School of Physics and materials Science, Thapar Institute of Engineering and Technology, Patiala, India
Get access

Abstract

A series of M-type hexaferrite samples with composition Sr1−xLaxFe12O19 (x = 0.00, 0.05, 0.15 and 0.25) were prepared by standard ceramic technique. AC electrical conductivity measurements were carried out at different frequencies (20 Hz–1 MHz) and at different temperatures. The dielectric constant and dielectric loss tangent were measured in the same range of frequencies. The experimental results indicate that AC electrical conductivity increases on increasing the frequency as well as the temperature, indicating magnetic semiconductor behavior of the samples. The increase in AC electrical conductivity with frequency and temperature has been explained on the basis of Koops Model whereas dielectric constant and dielectric loss tangent has been explained with the Maxwell–Wagner type interfacial polarization in agreement with the Koops phenomenological theory.

Keywords

Type
Research Article
Copyright
© EDP Sciences, 2006

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Kools, F., Adv. Ceram. 15, 1775 (1985)
Besenicar, S., Drofenic, M., Kolar, D., J. Magn. Magn. Mater. 101, 307 (1991) CrossRef
Stuijits, A.L., Trans. Brit. Cer. Soc. 55, 57 (1956)
Den Broedner, F.J.A., Franken, P.E.C., Adv. Ceram. 1, 494 (1985)
Turilli, G., Licci, F., Paoluzi, A., Besajni, T., IEEE T. Magn. 24, 2146 (1988) CrossRef
Turilli, G., Paoluzi, A., IEEE T. Magn. 24, 2865 (1988) CrossRef
Turilli, G., Licci, F., J. Magn. Magn. Mater. 75, 111 (1988) CrossRef
Rana, S., Krishna, H., Rai, K.N., Narayan, K.A., Jpn J. Appl. Phys. 28, 604 (1989)
Thompson, G.K., Evans, B.J., J. Appl. Phys. 29, 1944 (1994)
Abo Ata, A.M., Attia, S.M., Meaz, T.M., Solid State Sci. 6, 61 (2004) CrossRef
Abo Ata, A.M., Ahmed, M.A., J. Magn. Magn. Mater. 208, 27 (2000) CrossRef
Ahmed, M.A., El Hiti, M.A., Mosaad, M.M., S.M.Attia , J. Magn. Magn. Mater. 146, 84 (1995) CrossRef
Ravinder, D., Chandrashekhar Reddy, A., Mater. Lett. 57, 2855 (2003) CrossRef
A.M. Abo El Ata, S.M. Attia, J. Magn. Magn. Mater. 257, 165 (2003)
Bao, J., Zhou, Ji., Yue, Z., Longtu Li, Z. Gui, J. Magn. Magn. Mater. 250, 131 (2002) CrossRef
R.F. Sahoo, Theory and applications of ferrites (Prentice Hall, USA, 1960)
A.K. Jonscher, Dielectric Relaxation in Solids (Chelsea Dielectric Press, London, 1983)
Mostafa, M.F., Abd, M.M.. El Kader, A.S. Atallah, M.K. El Nimr, Phys. Status Solidi 135, 549 (1993) CrossRef
Koops, C.G., Phys. Rev. 83, 121 (1951) CrossRef
D. Ravinder, P. Vijaya, B. Reddy, Mater. Lett. 57, 4344 (2003)
Shaikh, A.M., Belled, S.S., Chougule, B.K., J. Magn. Magn. Mater. 195, 384 (1999) CrossRef
Ravi Kumar, B., Ravinder, D., Mater. Lett. 53, 437 (2002) CrossRef
Wagner, K.W., Am. Phys. 40, 817 (1973)
Reddy, P., Rao, T., Less, J., Common Met. 86, 255 (1982) CrossRef
Reddy, M.B., Reddy, P.V., Appl. Phys. (UK) 24, 975 (1991)
Watawe, S.C., Sarwede, B.D., Bellad, S.S., Sutar, B.D., Chougule, B.K., J. Magn. Magn. Mater. 214, 55 (2000) CrossRef