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Mixed magnetic behavior in gadolinium and ruthenium co-doped nickel oxide nanoparticles

材料科学 分析化学(期刊) 非阻塞I/O 掺杂剂 顺磁性 氧化镍 结构精修 X射线光电子能谱 拉曼光谱 带隙 纳米颗粒 兴奋剂 核磁共振 结晶学 纳米技术 晶体结构 化学 凝聚态物理 生物化学 物理 光电子学 色谱法 光学 冶金 催化作用
作者
A. M. Abdallah,R. Awad
出处
期刊:Physica Scripta [IOP Publishing]
卷期号:97 (1): 015802-015802 被引量:8
标识
DOI:10.1088/1402-4896/ac46f2
摘要

Abstract Pure and different concentrations from (Gd, Ru) co-doped NiO nanoparticles, capped with Polyvinylpyrrolidone (PVP), were fabricated by the co-precipitation method. The nanoparticles were characterized by different techniques. The Rietveld refinements of x-ray Diffraction (XRD) patterns confirmed the formation of the pure face-centered-cubic NiO phase. The x-ray Photo-induced Spectroscopy (XPS) assured the trivalent oxidation state of the doped ions Gd 3+ and Ru 3+ and unveiled the multiple oxidation states of nickel ions (Ni 2+ and Ni 3+ ), emerging from the vacancies in the samples. The Transmission Electron Microscope (TEM) images showed the pseudospherical morphology of the samples and the Energy Dispersive x-ray permitted the quantitative analysis of the presented elements and their homogeneous distribution. The Raman and Fourier Transform Infra-Red (FTIR) spectra depicted the fundamental vibrational bands of NiO nanoparticles, confirming their purity. The UV-visible spectroscopy enabled the absorption measurements and the energy gap calculations. The co-dopants increased the energy bandgap of NiO nanoparticles from 3.15 eV for pure NiO to 3.62 eV with the highest concentration of the co-dopants ( x = 0.02) The photoluminescence (PL) spectra gave insights into the possible defects present in the samples, such as nickel vacancies, single and double oxygen vacancies, and oxygen interstitials. The Vibrating Sample Magnetometer (VSM) studied the room temperature M-H loops of the co-doped samples. A combination of ferromagnetic, antiferromagnetic, and paramagnetic contributions was noticed and treated according to the law of approach to saturation and bound magnetic polaron (BMP) model. The magnetic parameters, such as the saturation magnetization, exchange and anisotropy field, and the BMP concentration were extracted from the fitted models and discussed in terms of the co-dopants’ concentration. The co-doped samples showed a softer magnetic behavior, which is recommended for data storage applications.
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