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PVC doped with Ni0.5Pb0.5Fe2O4 spinel ferrites nanoparticles: Fabrication, structural, optical, and radiation shielding properties.

Authors :
Alsaif, Norah A.M.
Al-Ghamdi, Hanan
Elsad, R.A.
Shams, M.S.
El-Shorbagy, M.A.
Abouhaswa, A.S.
Rammah, Y.S.
Shaaban, Shaaban M.
Source :
Radiation Physics & Chemistry. Nov2023, Vol. 212, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

In this work, (Ni 0.5 Pb 0.5 Fe 2 O 4) nano-ferrites has been prepared by a flash auto combustion technique, then new films of polyvinyl chloride (PVC) doped with x(Ni 0.5 Pb 0.5 Fe 2 O 4) nanoparticles: x = 0 (PVC/PNF0) – 10 (PVC/PNF10) wt% have been fabricated. The nature, physical, linear optical as well as γ-ray attenuation capacity of the fabricated PVC/(Ni 0.5 Pb 0.5 Fe 2 O 4) nanocomposites (NCs) sheets have been investigated. The crystalline state of (Ni 0.5 Pb 0.5 Fe 2 O 4) NPs, and amorphous state of pure PVC, and PVC/(Ni 0.5 Pb 0.5 Fe 2 O 4) films were performed by XRD measurements. The density (ρ) increased from 1.4451 to 2.613 g cm−3 for PVC/PNF0 and PVC/PNF10 sheets as the (Pb 0.5 Ni 0.5 Fe 2 O 4) NPs content increased from 0 to 10 wt%. The direct band gap (E g a p d i r e c t ) decreased from 5.259 to 2.969 eV, whereas Urbach energy (E U) increased from 0.439 to 4.812 eV. The index of refraction (n) for the fabricated films increased with increasing the concentration of (Ni 0.5 Pb 0.5 Fe 2 O 4) NPs. The highest and lowest mass attenuation coefficient (MAC) values possessed at 0.015 and 15 MeV, respectively. The effective atomic number (Z eff) of the currently films followed the trend: (Z eff) PVC/PNF0 < (Z eff) PVC/PNF1 < (Z eff) PVC/PNF3 < (Z eff) PVC/PNF5 < (Z eff) PVC/PNF10. The half value layer (HVL) parameter possessed the trend: (HVL) PVC/PNF0 > (HVL) PVC/PNF1 > (HVL) PVC/PNF3 > (HVL) PVC/PNF5 > (HVL) PVC/PNF10. The fabricated PVC/(Ni 0.5 Pb 0.5 Fe 2 O 4) NCs films can be used in electronic, optical, and radiation shielding applications. • PVC doped with Ni-Pb spinel nano-ferrites samples has been fabricated. • Physical properties of the investigated nanocomposites have been studied. • Linear optical properties have been investigated. • Capacity of radiation attenuation of the fabricated films has been evaluated. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0969806X
Volume :
212
Database :
Academic Search Index
Journal :
Radiation Physics & Chemistry
Publication Type :
Academic Journal
Accession number :
170024711
Full Text :
https://doi.org/10.1016/j.radphyschem.2023.111145