| Literature DB >> 31019873 |
Bagher Aslibeiki1, Parviz Kameli2, Hadi Salamati2, Giorgio Concas3, Maria Salvador Fernandez4,5, Alessandro Talone4,6, Giuseppe Muscas7, Davide Peddis6,8.
Abstract
The effect of cobalt doping on the magnetic properties of Mn1- x Co x Fe2O4 nanoparticles was investigated. All samples consist of ensembles of nanoparticles with a spherical shape and average diameter of about 10 nm, showing small structural changes due to the substitution. Besides having the same morpho-structural properties, the effect of the chemical composition, i.e., the amount of Co doping, produces marked differences on the magnetic properties, especially on the magnetic anisotropy, with evident large changes in the coercive field. Moreover, Co substitution has a profound effect on the interparticle interactions, too. A dipolar-based interaction regime is detected for all samples; in addition, the intensity of the interactions shows a possible relation with the single particle anisotropy. Finally, the sample with the strongest interaction regime shows a superspin glass state confirmed by memory effect dynamics.Entities:
Keywords: cobalt doping; collective dynamics; ferrite nanoparticles; interparticle interactions; magnetic properties
Year: 2019 PMID: 31019873 PMCID: PMC6466680 DOI: 10.3762/bjnano.10.86
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1Room temperature X-ray diffraction patterns of all samples. All diffraction peaks are compatible with the spinel structure.
Average crystallite size and lattice parameter (a). Uncertainties in the last digit are given in parentheses.
| Sample | ||
| C0 | 7.1(2) | 8.33(4) |
| C25 | 7.5(3) | 8.34(4) |
| C50 | 6.8(2) | 8.35(3) |
| C75 | 7.2(3) | 8.35(2) |
| C100 | 8.1(3) | 8.34(4) |
Figure 2As an example of the size, shape and crystalline quality of the samples, TEM images of C0 (a) and C100 (b) samples are reported. The insets show the respective particle size distribution fitted with a Gaussian distribution (solid line).
Figure 3(a) Comparison of ZFC curve during cooling (blue circles) and subsequent warming up (red circles). The difference, ΔM, is reported in (b) as a function of temperature.
Figure 4Mössbauer spectra recorded at 300 K for all samples. Only sample C0 is fully superparamagnetic at room temperature, while the only blocked sample is C100.
Data extracted from the fit of the Mössbauer spectra. Isomer shift (IS), quadrupole splitting (QS), hyperfine magnetic field (Bhf) and relative percentage area of the components. All measurements have an uncertainty of 1 in the last digit.
| Sample | IS (mm/s) | QS (mm/s) | Area (%) | |
| C0 | 0.41 | – | – | 65 |
| 0.42 | 0.82 | – | 35 | |
| C25 | 0.31 | 0 | 45 | 84 |
| 0.32 | 0.8 | – | 16 | |
| C50 | 0.31 | 0 | 47 | 84 |
| 0.33 | 0.82 | – | 16 | |
| C75 | 0.31 | 0 | 47 | 88 |
| 0.32 | 0.76 | – | 12 | |
| C100 | 0.30 | 0 | 46 | 100 |
Figure 5(a) Magnetization vs field curves and (b) switching field distribution measured at 5 K for sample C0 (black squares), C25 (red circles), C50 (blue triangles), C75 (dark cyan reversed triangles), and C100 (magenta diamonds).
Remanent magnetization (MR), saturation magnetization (MS), reduced remanence (MR/MS) and coercive field obtained from M(H) curves (μ0HC) calculated for each sample from M(H) loops and the average one from the SFD curves (μ0HCSFD). The intensity of ΔM plots is provided as a measure of the interaction intensity to be compared with the average dipolar energy trend (Edip). All curves were measured at 5 K. Uncertainties in the last digit are given in parentheses.
| Sample | μ0 | μ0 | Intensity Δ | |||||
| C0 | 21(2) | 51(2) | 0.42(5) | 0.074(1) | 20(1) | 0.073(1) | −0.764(5) | 9.78(5) × 10−20 |
| C25 | 43(2) | 67(2) | 0.64(5) | 1.16(1) | 405(5) | 1.23(1) | −0.335(5) | 1.69(5) × 10−19 |
| C50 | 38(2) | 66(2) | 0.58(5) | 1.66(1) | 570(5) | 1.76(1) | −0.323(5) | 1.64(5) × 10−19 |
| C75 | 40(2) | 68(2) | 0.59(5) | 2.03(1) | 720(5) | 2.26(1) | −0.321(5) | 1.74(5) × 10−19 |
| C100 | 38(2) | 68(2) | 0.56(5) | 2.10(1) | 744(5) | 2.43(1) | −0.297(5) | 1.74(5) × 10−19 |
Figure 6(a) ΔM plot curves measured at 5 K for sample C0 (black squares), C25 (red circles), C50 (blue triangles), C75 (dark cyan reversed triangles), and C100 (magenta diamonds). (b) The absolute intensity of interactions obtained from the ΔM plot is shown with respect to Co content (red triangles). The trend is the same exhibited by the dipolar coupling energy scaled by the effective anisotropy of each sample (black circles).