【精品论文】Sizedependent scaling of exchange bias in NiFe2O4NiO nanogranular systems synthesized .doc
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1、精品论文Size-dependent scaling of exchange bias in NiFe2O4/NiO nanogranular systems synthesized by a phase separation method5Tian Zhaoming, Huang Shuai(huazhong University of Science & Technology, WuHan 430074)Abstract: Exchange bias (EB) effect has been studied in a series of nanogranular systems of fe
2、rrimagnetic (Ferri) NiFe2O4 nanoparticles embedded into antiferromagnetic (AFM) NiO matrix, synthesized by a phase pprecipitation method from diluted Ni(1-x)FexO3 (x=0.09) oxides. For these10systems, the crystalline size (DNFO) of NiFe2O4 ranging from 3 nm to 55 nm has been obtainedwith thermal trea
3、ted at different temperatures from 550oC to 1000oC. Magnetization measurementshows that, both exchange bias field (HEB) and vertical magnetization shifts (MShift) can be exhibited below 250 K after field cooling procedure. The HEB and MShift decrease monotonically with crystalline size, and their be
4、havior strongly depend on the crystalline size of NiFe2O4 nanoparticles.15Linear relationship between HEB and MShift is observed for systems with smaller sizes (DNFO8nm), reveals a straightforward correlation between them. This phenomenon is ascribed to the interfacial exchange coupling between Ferr
5、i NiFe2O4 clusters and spin-glass-like (SGL) phases, where the frozen uncompensated spins in SGL phases play critical role of in inducing EB effect. As DNFO is above 12 nm, the dependence of HEB on MShift deviates from the linear relationship, which is discussed in20terms of the superimposed contrib
6、ution from the exchange coupling between Ferri NiFe2O4 core with the SGL phase, and the exchange coupling between Ferri NiFe2O4 core and AFM NiO phases at the interfaces.Keywords: Exchange bias; phase precipitation; uncompensated spins250IntroductionExchange bias (EB) refers to the shift of the hyst
7、eresis loop along the magnetic field axis, which is typically observed in exchange interacting ferromagnetic/antiferromagnetic (FM/AFM) materials.1 This effect was firstly discovered in 1956 by Meiklejohn and Bean when studying Co particles coated with a layer of AFM CoO.2 Since then, EB effect has
8、been observed in other30inhomogeneous materials involving a ferrimagnet (FI) (e.g., FI/AFM and FI/FM)3,4 or a spin-glass (SG) phase (e.g., FM/SG, AFM/SG and FI/SG).5-7 Generally, this effect has been extensively investigated mainly in multilayer film systems due to its technological applications in
9、magnetic random access memories, spin valves or magnetic tunnel junctions.7,8 During the past decade, EB effect in nanoparticle systems are also acquiring attention, because the FM-AFM exchange35interactions can be useful to beat the superparamagnetic limit of FM nanoparticles,9 a criticalbottleneck
10、 for ultrahigh density of magnetic data storage application. Moreover, the study of EB effect in reduced dimensions is also interesting from a fundamental point of view, because FM clusters are three-dimensional nanometer-scale inclusions in the AFM matrix in these systems in contrast to multilayer
11、films. Furthermore, it has allowed researchers to get deeper insight into the40characteristics and microscopic mechanism of this phenomenon, especially provide insight on finite size effect at nanoscale level.Although there are many studies on the scaling effect of EB in magnetic nanostructures, con
12、troversial results have been reported. Some authors reported that the EB field (HEB) is enhanced with size reduction of AFM phase,10-12 whereas others observed the opposite45trend.13,14 These discrepancies have been attributed to the different factors which impact theinterfacial coupling, such as do
13、main formation, interfacial roughness, impurities, and grainFoundations: This work was supported by the by the Foundation from the ministry of the National Education(Grant No. 20090142120069)Brief author introduction:spintronic materials. E-mail: tianzhaoming- 13 -shapes, etc,10-16 a full understand
14、ing of this phenomenon still remains elusive. In addition, most studies are focused on the film systems, size-dependent EB effect in granular systems that confines FM nanoparticles to AFM matrix is less investigated.50In this work, we focus on the investigation of size-dependent scaling of EB effect
15、 in the nanogranular system composed of Ferri NiFe2O4 nanoparticles embedded within AFM NiO matrix, synthesized by a phase precipitation method from Fe-doped NiO matrix. Both EB fields (HEB) and vertical magnetization shift (MShift) can be observed in these systems, and their behavior strongly depen
16、d on the particle size of NiFe2O4 nanoparticles. Two possible exchange coupling55interactions are proposed to explain this size-dependent scaling behavior.1Experimental detailsThe (1-x)NiO/xNiFe2O4(x=0.05) nanogranular systems were prepared by a high-temperature phase precipitation method from Fe-do
17、ped NiO matrix with x=0.09, similar to the description in our previous literature.17 The precursory powders were sintered at different temperatures from60550oC to 1000oC to produce the NiO/NiFe2O4 nanocomposites with different particle sizes. For convenience, the samples are labeled as S1, S2, S3, S
18、4, S5, S6, and S7 for samples sintered at550oC for 3 h, 600oC for 1 h, 600oC for 3 h, 650oC for 3 h, 700oC for 3 h, 800oC for 3 h, and1000oC for 1 h, respectively. The exact values for the synthesized nanogranular systems with different crystalline sizes are given in Table 1.65The microstructure of
19、the samples was characterized by X-ray diffraction (XRD). The micrographs of the samples were investigated by transmission electron microscopy (TEM). Selected-area electron diffraction (SAED), in conjunction with high-resolution transmission electron microscope (HRTEM) analysis, was used to determin
20、e the local crystallographic phases. The magnetic properties were performed using a commercial physical properties70measurements system (PPMS, quantum design). Temperature dependence of magnetizations with different magnetic fields were measured on both zero-field cooled (ZFC) and field cooled (FC)
21、processes in a range 10KT350K. Magnetization versus time measurements were made by first cooling in zero field to measuring temperatures, then applying the applied field to 40 kOe and magnetization was measured every 20 s for 7200 s. After that, the field75was ramped to -40 kOe, and measured again f
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