Interparticle Magnetic Interactions and the Field Dependence of the Superparamagnetic Blocking Temperature in a Powder System of Ultrasmall Nickel Ferrite Particles

IF 1.4 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
D. A. Balaev, A. A. Krasikov, Yu. V. Knyazev, S. V. Stolyar, A. O. Shokhrina, A. D. Balaev, R. S. Iskhakov
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Abstract

The dependence of the superparamagnetic blocking temperature on an external magnetic field TB(H) has been studied and analyzed for a nickel ferrite nanoparticle powder system in order to establish the influence of magnetic interparticle interactions on superparamagnetic blocking. The features of this system are: (i) a small particle size (~4–5 nm on average); (ii) a pronounced “core/shell” structure of particles, in which the magnetic moment of a particle is formed by a ferrimagnetically ordered core, while the spins of the surface layer, about 1 nm thick, do not contribute to this magnetic moment. The random anisotropy model, which describes the influence of magnetic interparticle interactions on the TB value in the external field, is used to reproduce the experimental dependence TB(H) obtained by static magnetometry. The analysis has demonstrated strong magnetic interactions in the studied system, which are manifested in a sharp decrease in the TB value in the weak-field region, and has made it possible to quantitatively estimate the intensity and energy of magnetic interparticle interactions, as well as to determine the magnetic anisotropy constant of individual particles (without the influence of magnetic interparticle interactions). The role of the subsystem of surface spins, which, according to the imaginary part of the magnetic susceptibility, exhibits signatures of collective behavior, is discussed as a possible source of magnetic interparticle interactions.

Abstract Image

超小镍铁氧体颗粒粉末体系中粒子间磁相互作用及超顺磁阻塞温度的场依赖性
为了确定磁粒间相互作用对超顺磁阻塞的影响,研究并分析了镍铁氧体纳米颗粒粉末体系的超顺磁阻塞温度与外加磁场TB(H)的关系。该体系的特点是:(1)粒径小(平均约4 ~ 5 nm);(ii)明显的粒子“核/壳”结构,其中粒子的磁矩是由铁磁性有序的核形成的,而表面层(约1nm厚)的自旋对该磁矩没有贡献。随机各向异性模型描述了磁场粒子间相互作用对外场中TB值的影响,用于再现静态磁强计得到的实验依赖TB(H)。分析表明,所研究的体系中存在强磁相互作用,表现为弱场区TB值的急剧下降,从而可以定量估计磁粒子间相互作用的强度和能量,以及确定单个粒子的磁各向异性常数(不受磁粒子间相互作用的影响)。根据磁化率的虚部,表面自旋子系统表现出集体行为的特征,讨论了表面自旋子系统作为磁粒子间相互作用的可能来源的作用。
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来源期刊
JETP Letters
JETP Letters 物理-物理:综合
CiteScore
2.40
自引率
30.80%
发文量
164
审稿时长
3-6 weeks
期刊介绍: All topics of experimental and theoretical physics including gravitation, field theory, elementary particles and nuclei, plasma, nonlinear phenomena, condensed matter, superconductivity, superfluidity, lasers, and surfaces.
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