4.7 Article

Complex permittivity, permeability, magnetic and microwave absorbing properties of Ni2+ substituted mechanically milled U-type hexaferrites

Journal

JOURNAL OF ALLOYS AND COMPOUNDS
Volume 774, Issue -, Pages 52-60

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2018.09.339

Keywords

U-type hexaferrite; Complex permeability; Complex permittivity; Saturation magnetisation; Reflection loss; Mechanical jet milling

Funding

  1. Department of Science and Technology (DST), INDIA [INT/HUN/P-03/2014]

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The polycrystalline samples of Ni2+ substituted U-type hexaferrite; (Ba0.7Bi0.2)(4)(Co1-xNix)(2)Fe36O60 (0.25 <= x <= 1.00, in steps of 0.25) were prepared through solid state reaction method. XRD patterns, fitted with Le Bail method, revealed the formation of U-type hexaferrite phase in as-prepared samples. Scanning electron micrograph (SEM) indicates the presence of plate-like hexagonal particles with average sizes of similar to 1-4 mu m. In order to reduce the grain sizes down to nanoscale, two stage high energy mechanical jet milling was performed on x = 0.75 composition sample. The jet milled hexaferrite exhibits relatively smaller grain sizes (similar to 20-50 nm), lower saturation magnetisation (M-s similar to 38.6 emu/g) and higher coercivity (H-c similar to 590.2 Oe) in comparison to unmilled sample of same composition (x = 0.75). The jet milled sample, with nanoscale hexaferrite particles, exhibits excellent reflection loss (R-L) of -43.8 dB (99.99% MW absorption) at 11.3 GHz frequency. In addition, the jet milled sample displays a broad frequency bandwidth (similar to 8.6 GHz) for R-L <= -10 dB (90% MW absorption), extending over similar to 9.1-17.7 GHz frequency range. (c) 2018 Elsevier B.V. All rights reserved.

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