Magnetic response of Ho3+ doped Ni0.4Cu0.6HoyFe2-yO4 spinel ferrites and their correlation with crystallite size

IF 5.1 2区 材料科学 Q1 MATERIALS SCIENCE, CERAMICS Ceramics International Pub Date : 2024-07-08 DOI:10.1016/j.ceramint.2024.07.096
Manal F. Abou Taleb, Mohamed M. Ibrahim, A.U. Rahman, Zeinhom M. El-Bahy
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Abstract

This study investigates the magnetic response of Ho3+ doped Ni0.4Cu0.6HoyFe2-yO4 (y = 0.0, 0.02, 0.04, 0.06, and 0.08) spinel ferrites (SFs) and their correlation with crystallite size. The synthesis was achieved using a sol-gel auto-combustion (SGAC) route and performed different characterizations, including X-ray diffraction (XRD), Scanning electron microscope (SEM), Energy dispersive x-ray (EDX), Inductively coupled plasma atomic emission spectroscopy (ICP-AES), and vibrating sample magnetometer (VSM) analysis. The cubic spinel phase was verified via XRD in pure NCF and Ho3+ doped NCF samples. The lattice constant (a) was improved from 8.344 Å to 8.378 Å. The substitution of Ho3+ ions led to a decrease in porosity from 42.22% to 39.54%. The introduction of Ho3+ ions also reduced the crystallite size (D) from 37.05 nm to 27.72 nm. The specific surface area (S) was increased from 27.44 g/cm2 to 36.14 g/cm2 with the doping of Ho3+. The average particle size (DS) was decreased from 54 nm to 35 nm. The EDX and ICP-AES analyses confirmed the good agreement with the theoretical composition. The VSM measurements provided insights into their magnetic properties. Furthermore, the doping of Ho3+ ions enhanced coercivity (HC), while reducing saturation magnetization (MS) from 64.35 emu/g to 16.22 emu/g. The decrease in crystalline anisotropy (K) observed at higher concentrations of Ho3+ may result from the increase in coercivity, potentially attributable to the smaller crystallite size of the single-domain SFs particles. The single-phase matrix and their magnetic behaviour showed that the Ho3+ doped Ni-Cu SFs samples are suitable for high-frequency applications.

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掺杂 Ho3+ 的 Ni0.4Cu0.6HoyFe2-yO4 尖晶铁氧体的磁响应及其与晶体尺寸的相关性
本研究探讨了掺杂 Ho3+ 的 Ni0.4Cu0.6HoyFe2-yO4(y = 0.0、0.02、0.04、0.06 和 0.08)尖晶石铁氧体(SFs)的磁响应及其与晶粒尺寸的相关性。合成采用溶胶-凝胶自动燃烧(SGAC)工艺,并进行了不同的表征,包括 X 射线衍射(XRD)、扫描电子显微镜(SEM)、能量色散 X 射线(EDX)、电感耦合等离子体原子发射光谱(ICP-AES)和振动样品磁力计(VSM)分析。纯 NCF 和掺杂 Ho3+ 的 NCF 样品的立方尖晶石相通过 XRD 得到了验证。晶格常数(a)从 8.344 Å 提高到了 8.378 Å,Ho3+ 离子的替代导致孔隙率从 42.22% 降至 39.54%。引入 Ho3+ 离子还使结晶尺寸(D)从 37.05 nm 减小到 27.72 nm。掺入 Ho3+ 离子后,比表面积(S)从 27.44 g/cm2 增加到 36.14 g/cm2。平均粒径(DS)从 54 nm 减小到 35 nm。EDX 和 ICP-AES 分析证实其与理论成分十分吻合。VSM 测量有助于深入了解其磁性能。此外,掺杂 Ho3+ 离子增强了矫顽力(HC),同时将饱和磁化率(MS)从 64.35 emu/g 降至 16.22 emu/g。Ho3+浓度越高,晶体各向异性(K)越低,这可能是由于矫顽力的增加,也可能是由于单域 SFs 颗粒的晶体尺寸较小。单相基体及其磁特性表明,掺杂了 Ho3+ 的 Ni-Cu SFs 样品适用于高频应用。
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来源期刊
Ceramics International
Ceramics International 工程技术-材料科学:硅酸盐
CiteScore
9.40
自引率
15.40%
发文量
4558
审稿时长
25 days
期刊介绍: Ceramics International covers the science of advanced ceramic materials. The journal encourages contributions that demonstrate how an understanding of the basic chemical and physical phenomena may direct materials design and stimulate ideas for new or improved processing techniques, in order to obtain materials with desired structural features and properties. Ceramics International covers oxide and non-oxide ceramics, functional glasses, glass ceramics, amorphous inorganic non-metallic materials (and their combinations with metal and organic materials), in the form of particulates, dense or porous bodies, thin/thick films and laminated, graded and composite structures. Process related topics such as ceramic-ceramic joints or joining ceramics with dissimilar materials, as well as surface finishing and conditioning are also covered. Besides traditional processing techniques, manufacturing routes of interest include innovative procedures benefiting from externally applied stresses, electromagnetic fields and energetic beams, as well as top-down and self-assembly nanotechnology approaches. In addition, the journal welcomes submissions on bio-inspired and bio-enabled materials designs, experimentally validated multi scale modelling and simulation for materials design, and the use of the most advanced chemical and physical characterization techniques of structure, properties and behaviour. Technologically relevant low-dimensional systems are a particular focus of Ceramics International. These include 0, 1 and 2-D nanomaterials (also covering CNTs, graphene and related materials, and diamond-like carbons), their nanocomposites, as well as nano-hybrids and hierarchical multifunctional nanostructures that might integrate molecular, biological and electronic components.
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