Sintering of Ni-Zn Ferrite by Microwave Energy

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This paper proposes to assess the sintering of Ni-Zn ferrites synthesized by combustion reaction in advance to procure materials for applications as soft magnetic devices. The samples used for sintering have different morphological characteristics and were previously synthesized by microwave energy. The samples were uniaxially pressed and sintered in a microwave oven at 1200°C/2h with a heating rate of 5°C/min, and characterized by XRD, SEM and magnetic measurements. The results show that for all samples have the formation of Ni-Zn phase and traces hematite as secondary phase. The resulting microstructure after sintering was different and was influenced by previous morphological characteristics of the synthesized samples. As for the magnetic parameters, all samples were characteristic of soft magnetic material with saturation magnetization between 57 and 62 emu.g-1, indicating are promising materials for the fabrication of soft magnetic devices.

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Materials Science Forum (Volumes 727-728)

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977-981

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August 2012

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© 2012 Trans Tech Publications Ltd. All Rights Reserved

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[1] R. C. Pessoa, Study of magnetic and absorbing characteristics of the NiZn ferrites, NiZnMn, MnZn, NiMg, and NiCuZn NiCuZnMg obtained via the citrate precursor method. Doctorate Thesis, Federal University of Rio Grande do Norte, Rio Grande do Norte, (2009).

DOI: 10.20396/ccfenf1201838

Google Scholar

[2] A. E. G. Moura, Synthesis, sintering and characterization of ferrite-based Ni-Zn. Dissertation, Federal University of Rio Grande do Norte, Rio Grande do Norte, (2008).

DOI: 10.24873/j.rpemd.2020.09.704

Google Scholar

[3] C.Y. Tsay, K.S. Liu, T.F. Lin, I.N. Lin. J. Magn. Magn. Mater., 209, (2000), pp.189-192.

Google Scholar

[4] G. M. Rai, F. Aen, MISBAH-UL-ISLAM, M.U. Rana. J. Alloys. Compd., 509, (2011) , 4793-4796.

DOI: 10.1016/j.jallcom.2011.01.165

Google Scholar

[5] K. S. Lin, A. K. Adhikari, Z. Y. Tsay, Y. P. Chen, T. T. Chien, H. B. Tsai., Catalysis Today, 174, (2011), 88-96.

Google Scholar

[6] V. Cabuil, V. Dupuis, D. Talbot, S. Neveu. J. Magn. Magn. Mater., 323, (2011), 1238-1241.

Google Scholar

[7] Z. Liu, M. Li, X. Yang, M. Yin, J. Ren, X. G. Qu. Biomaterials, 32, (2011), 4683-4690.

Google Scholar

[8] S. Challa, S.R. Kumar, F. Mohammad. Advanced Drug Delivery Reviews, 63, (2011), 789-808.

Google Scholar

[9] A. B. V. Groenou; P. F. Bongers; A. L. Stuijits. Materials Science and Engineering, 3, (1969), 317.

Google Scholar

[10] F. I. G Brito; K. F. Medeiros, J. M. Lourenço. Holos. Ano 23. 3, (2007), 204.

Google Scholar

[11] M. A . Janney; H. D. Kimrey, Ceramic Transactions, 7, (1990), 382-386.

Google Scholar

[12] R. R. Menezes; P. M. Souto; R. H. G. A. Kiminami, Cerâmica, 53, (2007), 1-10.

Google Scholar

[13] D. A. Vieira, Synthesis by microwave energy of Ni-Zn ferrite. Dissertation (Sciences and Engineering of Materials) - Federal University of Campina Grande. Campina Grande, PB. (2009).

DOI: 10.21475/ajcs.18.12.02.pne612

Google Scholar

[14] A.C.F.M. Costa. Synthesis for Combustion Reaction, Sinterizaction and Ferrites Characterization Ni–Zn Thesis (Doctorate in) Department of Engineering of Materials, Federal University of São Carlos, São Carlos, (2002).

DOI: 10.15584/ejcem.2022.1.4

Google Scholar

[15] R. R. Menezes; P. M. Souto; R. H. G. A. Kiminami, Cerâmica, 53, (2007), 108-115.

Google Scholar

[16] Z. Wang, Y. Xie, P. Wang, Y. Ma, S. Jin, X. Liu, J. Magn. Magn. Mater. (2011), doi: 10. 1016/j. jmmm. 2011. 06. 068.

Google Scholar