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Physicochemical, morphological, and charge carrier mobility range dielectric evaluations of Yb-doped BaCo2 W-type hexagonal ferrites for high-frequency applications.

Authors :
Afzal, Uswa
Irfan, M.
Rasool, Raqiqa Tur
Akhtar, Majid Niaz
Naheed, Farah
Khan, Muhammad Azhar
Sheikh, Tahir Ali
Gulbadan, Shagufta
Ramzan, Muhammad
Alshomrany, Ali S.
Ashraf, Ghulam Abbas
Alelyani, Magbool
Source :
Ceramics International. Nov2024:Part C, Vol. 50 Issue 21, p43563-43575. 13p.
Publication Year :
2024

Abstract

Microwave absorption materials have attracted attention due to their extensive applications in different fields. Herein, ytterbium-doped BaCo 2 W-type hexaferrite nanocrystallites with a nominal composition of BaCo 2 Yb x Fe 16−x O 27 (x = 0.00, 0.03, 0.06, 0.09, and 0.12) were synthesized via the sol–gel method, and their physicochemical and dielectric characteristics were estimated. XRD plots revealed the pure phase structure of each prepared hexaferrite sample. The lattice constant and unit cell volume were affected by changes in the Yb concentration. The crystallite size was measured by the Debye–Scherrer formula, revealing intense crystals typically in the 18–33 nm range. FTIR spectroscopy showed multiple absorption bands from 430 to 3000 cm−1, and Raman spectroscopy revealed multiple peaks between 200 and 1000 cm−1, displaying the allocated polyhedra and symmetry. XPS spectroscopy confirmed the existence of all metal ions in the required valence state. The dielectric measurements were evaluated at frequencies from 1 to 6 GHz for all the synthesized compositions, and the material behavior was explained using the Maxwell–Wagner and Koop theories. The conduction mechanism in the hexagonal ferrites was assessed using Cole–Cole analysis. Reflection loss measurements were also conducted: the samples at x = 0.03 and x = 0.12 yielded minimal reflection losses of −60.06 and −51.69 dB at 5.5 GHz, respectively. The results demonstrate the suitability of the samples for use in microwave and high-frequency absorption applications. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02728842
Volume :
50
Issue :
21
Database :
Academic Search Index
Journal :
Ceramics International
Publication Type :
Academic Journal
Accession number :
179973077
Full Text :
https://doi.org/10.1016/j.ceramint.2024.08.208