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Electromagnetic performance, optical and physiochemical features of CaTiO3/NiO and SrFe12O19/NiO nanocomposites based bilayer absorber.

Authors :
Feng, Li
Liu, Jiajun
Huynen, Isabelle
Mahmoud, Mustafa Z.
Akhtar, Majid Niaz
Source :
Journal of Colloid & Interface Science. Mar2022, Vol. 610, p879-892. 14p.
Publication Year :
2022

Abstract

Structural, Microstructure and RL curves of Single and Double Layers Absorbers of D and D/M samples. [Display omitted] Herein, two distinct nanocomposites of CaTiO 3 micro-cubes and polygonal SrFe 12 O 19 , both decorated with NiO nanoparticles, were successfully synthesized using hydrothermal method. The physico-chemical features of as-prepared samples were evaluated via XRD, FTIR, UV–vis, BET, XPS, FESEM and EDS analysis. Microwave attenuation features of as-prepared single layer absorbers were determined by VNA analysis in 2–18 GHz. Simulation confirmation was checked by preparing a bi-layer samples and evaluating it using VNA analysis after finding the appropriate thickness of each layer. The reflection loss from each single layer samples containing 20 wt% of each CaTiO 3 /NiO and SrFe 12 O 19 /NiO nanocomposites were −16 dB and −35 dB at 6.3 GHz with 2.5 mm matching thickness respectively. However, the RL was −34 dB at 10 GHz frequency with 2 mm thickness in a bilayer absorber with SrFe 12 O 19 /NiO nanocomposite layer put as absorbing layer with 1 mm thickness and CaTiO 3 /NiO positioned as matching layer with 1 mm thickness. Furthermore, at the X-band frequency, approximately entire band absorption is obtained. The findings demonstrate that adjusting the order and thickness of the layers in a bilayer absorber may readily improve microwave absorption performance. By comparing the results of simulation with real prepared bilayer absorbers, we found that with a 2 mm overall thickness, the bi-layer absorbers display accurate RL values, but not the matching frequency monitored in the simulation process. In reality, this discrepancy was unavoidable. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219797
Volume :
610
Database :
Academic Search Index
Journal :
Journal of Colloid & Interface Science
Publication Type :
Academic Journal
Accession number :
154593682
Full Text :
https://doi.org/10.1016/j.jcis.2021.11.127