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G. Alna'Washi

Researcher at Hashemite University

Publications -  27
Citations -  628

G. Alna'Washi is an academic researcher from Hashemite University. The author has contributed to research in topics: Photoionization & Coercivity. The author has an hindex of 11, co-authored 27 publications receiving 517 citations. Previous affiliations of G. Alna'Washi include University of Nevada, Reno & Yarmouk University.

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Confinement Resonances in Photoionization of Xe@C+60

TL;DR: In this article, the authors presented experimental evidence for confinement resonances associated with photoabsorption by a Xe atom in a C60 cage, where the giant 4D resonance in photoionization of Xe is predicted to be redistributed into four components due to multipath interference of photoelectron waves reflected by the cage.
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Magnetic study of M-type doped barium hexaferrite nanocrystalline particles

TL;DR: In this paper, the magnetic properties and their temperature dependencies of Co-Ti and Ru-Ti substituted barium ferrite nanocrystalline particles with ball milling method were studied.
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Magnetic and optical properties of Co-doped ZnO nanocrystalline particles

TL;DR: In this article, the effect of Co doping on the structural, magnetic and optical properties of ZnO nanocrystalline particles, using X-ray diffraction, x-ray photoelectron spectroscopy (XPS), Quantum Design PPMS-9 magnetometry, and Ultra Violet-Visible (UVVisible) spectroglobalization, was carried out.
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Influence of Mn doping on the magnetic and optical properties of ZnO nanocrystalline particles

TL;DR: The structural, optical and magnetic properties of Mn doped ZnO nanocrystalline particles, Zn1-xMnxO, with different percentages of Mn content have been studied in this paper.
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Magnetic study of M-type Ru–Ti doped strontium hexaferrite nanocrystalline particles

TL;DR: In this article, the effect of substitution of Ti2 and Ru4+ ions for Fe3+ ions on the structural and magnetic properties of strontium ferrite nanoparticles with ( 0 ≤ x ≤ 0.3 ), using x-ray diffraction, Quantum Design PPMS-9 magnetometry, and electrical resistivity.