Figure 1.
XRD diffraction patterns of the CoFe2O4 unsintered and sintered at 400, 800, and 1000 °C.
Figure 1.
XRD diffraction patterns of the CoFe2O4 unsintered and sintered at 400, 800, and 1000 °C.
Figure 2.
XRD diffraction patterns of CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C.
Figure 2.
XRD diffraction patterns of CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C.
Figure 3.
XRD diffraction patterns of Co0.7Zn0.3LaxFe2−xO4 calcined at 800 °C.
Figure 3.
XRD diffraction patterns of Co0.7Zn0.3LaxFe2−xO4 calcined at 800 °C.
Figure 4.
The variation of lattice parameter and average crystallite size for Co0.7Zn0.3LaxFe2−xO4.
Figure 4.
The variation of lattice parameter and average crystallite size for Co0.7Zn0.3LaxFe2−xO4.
Figure 5.
X-ray diffraction patterns of Co0.7Zn0.3La0.01Fe1.99O4 calcined at different temperatures.
Figure 5.
X-ray diffraction patterns of Co0.7Zn0.3La0.01Fe1.99O4 calcined at different temperatures.
Figure 6.
SEM micrographs of CoRExFe2−xO4 (x = 0, 0.02; Re = La, Sm, Gd) sintered at 800 °C.
Figure 6.
SEM micrographs of CoRExFe2−xO4 (x = 0, 0.02; Re = La, Sm, Gd) sintered at 800 °C.
Figure 7.
Grain size of CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C.
Figure 7.
Grain size of CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C.
Figure 8.
Scanning electron microscopy micrographs and grain size distribution diagram for CoFe2O4 sintered at 1000 °C.
Figure 8.
Scanning electron microscopy micrographs and grain size distribution diagram for CoFe2O4 sintered at 1000 °C.
Figure 9.
SEM micrographs of Co0.7Zn0.3La0.05Fe1.95O4 (x = 0.05) and Co0.7Zn0.3La0.10Fe1.90O4 (x = 0.10) calcined at 800 °C.
Figure 9.
SEM micrographs of Co0.7Zn0.3La0.05Fe1.95O4 (x = 0.05) and Co0.7Zn0.3La0.10Fe1.90O4 (x = 0.10) calcined at 800 °C.
Figure 10.
Histogram of grain size distribution of Co0.7Zn0.3La0.05Fe1.95O4 (x = 0.05) and Co0.7Zn0.3La0.10Fe1.90O4 (x = 0.10) calcined at 800 °C.
Figure 10.
Histogram of grain size distribution of Co0.7Zn0.3La0.05Fe1.95O4 (x = 0.05) and Co0.7Zn0.3La0.10Fe1.90O4 (x = 0.10) calcined at 800 °C.
Figure 11.
Room temperature Mössbauer spectroscopy curve for CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C. (The blue and purple line spectra represent the Mössbauer spectra of iron ions in the A and B lattice, while the red line spectra represent the total Mössbauer spectra).
Figure 11.
Room temperature Mössbauer spectroscopy curve for CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C. (The blue and purple line spectra represent the Mössbauer spectra of iron ions in the A and B lattice, while the red line spectra represent the total Mössbauer spectra).
Figure 12.
The spatial structure of spinel ferrite cells.
Figure 12.
The spatial structure of spinel ferrite cells.
Figure 13.
Room temperature Mössbauer spectroscopy curve of Co0.7Zn0.3LaxFe2–xO4 calcined at 800 °C. (The blue and purple line spectra represent the Mössbauer spectra of iron ions in the A and B lattice, while the red line spectra represent the total Mössbauer spectra).
Figure 13.
Room temperature Mössbauer spectroscopy curve of Co0.7Zn0.3LaxFe2–xO4 calcined at 800 °C. (The blue and purple line spectra represent the Mössbauer spectra of iron ions in the A and B lattice, while the red line spectra represent the total Mössbauer spectra).
Figure 14.
The A site of the tetrahedral lattice and the B site of the octahedral lattice. (1–6 and a–d represent the Oxygen ion).
Figure 14.
The A site of the tetrahedral lattice and the B site of the octahedral lattice. (1–6 and a–d represent the Oxygen ion).
Figure 15.
Room temperature Mössbauer spectroscopy curve for CoFe2O4 unsintered and sintered at 400, 800, and 1000 °C. (The blue and purple line spectra represent the Mössbauer spectra of iron ions in the A and B lattice, while the red line spectra represent the total Mössbauer spectra).
Figure 15.
Room temperature Mössbauer spectroscopy curve for CoFe2O4 unsintered and sintered at 400, 800, and 1000 °C. (The blue and purple line spectra represent the Mössbauer spectra of iron ions in the A and B lattice, while the red line spectra represent the total Mössbauer spectra).
Figure 16.
Room temperature Mössbauer spectroscopy curve for Co0.7Zn0.3La0.01Fe1.99O4 sintered at 0, 400, and 800 °C. (The red line spectra represent theMössbauer spectra of iron ions in the B lattice and the total Mössbauer spectra).
Figure 16.
Room temperature Mössbauer spectroscopy curve for Co0.7Zn0.3La0.01Fe1.99O4 sintered at 0, 400, and 800 °C. (The red line spectra represent theMössbauer spectra of iron ions in the B lattice and the total Mössbauer spectra).
Figure 17.
Room temperature magnetic hysteresis curve of CoFe2O4 sintered at 800 and 1000 °C.
Figure 17.
Room temperature magnetic hysteresis curve of CoFe2O4 sintered at 800 and 1000 °C.
Figure 18.
Room temperature magnetic hysteresis curve of CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C.
Figure 18.
Room temperature magnetic hysteresis curve of CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C.
Figure 19.
Hysteresis loops of Co0.7Zn0.3LaxFe2−xO4 calcined at 800 °C.
Figure 19.
Hysteresis loops of Co0.7Zn0.3LaxFe2−xO4 calcined at 800 °C.
Figure 20.
Variation of theoretical and experimental magnetic moment with lanthanum substitution.
Figure 20.
Variation of theoretical and experimental magnetic moment with lanthanum substitution.
Table 1.
XRD pattern data for CoFe2O4 unsintered and sintered at 400, 800, and 1000 °C.
Table 1.
XRD pattern data for CoFe2O4 unsintered and sintered at 400, 800, and 1000 °C.
Reaction Temperature (Centigrade) | Lattice Parameter (Å) | Average Crystallite Size (Å) | Density (g/cm3) |
---|
unsintered | 8.41280 | 361 | 5.2347 |
400 | 8.39149 | 407 | 5.2747 |
800 | 8.35497 | 556 | 5.3468 |
1000 | 8.38615 | 520 | 5.2847 |
Table 2.
XRD pattern data for CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd.) sintered at 800 °C.
Table 2.
XRD pattern data for CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd.) sintered at 800 °C.
Content (x) | Lattice Parameter (Å) | Average Crystallite Size (Å) | Density (g/cm3) |
---|
none | 8.35497 | 556 | 5.3468 |
La | 8.37988 | 391 | 5.3341 |
Sm | 8.38629 | 374 | 5.3279 |
Gd | 8.40457 | 402 | 5.2954 |
Table 3.
XRD data for Co0.7Zn0.3LaxFe2−xO4 calcined at 800 °C.
Table 3.
XRD data for Co0.7Zn0.3LaxFe2−xO4 calcined at 800 °C.
Content(x) | Lattice Parameter (Å) | Average Crystallite Size (Å) | Density (g/cm3) |
---|
0 | 8.41196 | 455 | 5.2794 |
0.01 | 8.42301 | 354 | 5.2769 |
0.03 | 8.39198 | 290 | 5.3732 |
0.05 | 8.39729 | 227 | 5.4003 |
0.07 | 8.39091 | 233 | 5.4500 |
0.09 | 8.37899 | 199 | 5.5108 |
0.10 | 8.38984 | 215 | 5.5081 |
0.15 | 8.40206 | 257 | 5.5771 |
0.20 | 8.40366 | 242 | 5.6669 |
Table 4.
XRD pattern data for Co0.7Zn0.3La0.01Fe1.99O4 calcined at different temperatures.
Table 4.
XRD pattern data for Co0.7Zn0.3La0.01Fe1.99O4 calcined at different temperatures.
Reaction Temperature (Centigrade) | Lattice Parameter (Å) | Average Cryst Size (Å) | Density (g/cm3) |
---|
unsintered | 8.42798 | 236 | 5.2678 |
400 | 8.43571 | 227 | 5.2533 |
800 | 8.42301 | 354 | 5.2769 |
Table 5.
The room temperature Mössbauer spectroscopy data of specimens CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C.
Table 5.
The room temperature Mössbauer spectroscopy data of specimens CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C.
Content | Component | I.S. (mm/s) | Q.S. (mm/s) | H (T) | Γ (mm/s) | A0 (mm/s) |
---|
none | Sextet (1) | 0.237 | −0.004 | 48.946 | 0.360 | 32.4 |
Sextet (2) | 0.375 | −0.024 | 45.695 | 0.322 | 67.6 |
La | Sextet (1) | 0.228 | −0.005 | 49.023 | 0.363 | 24.5 |
Sextet (2)) | 0.342 | −0.035 | 46.381 | 0.356 | 75.5 |
Sm | Sextet (1) | 0.229 | −0.003 | 49.146 | 0.400 | 27.6 |
Sextet (2) | 0.368 | −0.005 | 44.827 | 0.328 | 72.4 |
Gd | Sextet (1) | 0.231 | 0.015 | 49.201 | 0.357 | 25.5 |
Sextet (2) | 0.349 | −0.020 | 46.173 | 0.342 | 74.5 |
Table 6.
The room temperature Mössbauer spectroscopy data of Co0.7Zn0.3LaxFe2−xO4 calcined at 800 °C.
Table 6.
The room temperature Mössbauer spectroscopy data of Co0.7Zn0.3LaxFe2−xO4 calcined at 800 °C.
Content(x) | Component | I.S. (mm/s) | Q.S. (mm/s) | H(T) | Γ (mm/s) | A0 (%) |
---|
0 | Sextet (1) | 0.235 | 0.055 | 47.508 | 0.429 | 11 |
Sextet (2) | 0.306 | −0.050 | 38.946 | 0.338 | 89 |
0.01 | Sextet (2) | 0.276 | −0.055 | 39.416 | 0.343 | 100 |
0.03 | Sextet (2) | 0.306 | −0.002 | 38.396 | 0.346 | 100 |
0.05 | Sextet (2) | 0.316 | 0.001 | 37.322 | 0.424 | 100 |
0.07 | Sextet (2) | 0.282 | −0.069 | 36.702 | 0.334 | 100 |
0.09 | Sextet (2) | 0.296 | −0.103 | 35.311 | 0.320 | 100 |
0.10 | Sextet (2) | 0.266 | −0.058 | 34.700 | 0.401 | 100 |
0.15 | Sextet (2) | 0.285 | −0.058 | 34.780 | 0.332 | 100 |
0.20 | Sextet (2) | 0.311 | −0.005 | 34.476 | 0.469 | 97.2 |
Doublet | 0.350 | 0.445 | - | 0.296 | 2.8 |
Table 7.
The Mössbauer spectroscopy data of CoFe2O4 unsintered and calcined at 400 °C, 800 °C, and 1000 °C.
Table 7.
The Mössbauer spectroscopy data of CoFe2O4 unsintered and calcined at 400 °C, 800 °C, and 1000 °C.
Reaction Temperature (Centigrade) | Component | I.S. (mm/s) | Q.S. (mm/s) | H (T) | Γ (mm/s) | A0 (mm/s) |
---|
unsintered | Sextet (1) | 0.246 | −0.022 | 49.277 | 0.401 | 26.5 |
Sextet (2) | 0.357 | −0.003 | 45.756 | 0.341 | 73.5 |
400 | Sextet (1) | 0.241 | 0.002 | 49.323 | 0.422 | 30.4 |
Sextet (2) | 0.367 | −0.017 | 45.078 | 0.319 | 69.6 |
800 | Sextet (1) | 0.237 | −0.004 | 48.946 | 0.360 | 32.4 |
Sextet (2) | 0.375 | −0.024 | 45.695 | 0.322 | 67.6 |
1000 | Sextet (1) | 0.238 | −0.011 | 48.852 | 0.366 | 28.4 |
Sextet (2) | 0.355 | 0.0004 | 45.889 | 0.338 | 71.6 |
Table 8.
The room temperature Mössbauer spectroscopy data of Co0.7Zn0.3La0.01Fe1.99O4 calcined at 800 °C.
Table 8.
The room temperature Mössbauer spectroscopy data of Co0.7Zn0.3La0.01Fe1.99O4 calcined at 800 °C.
Reaction Temperature (Centigrade) | Component | I.S. (mm/s) | Q.S. (mm/s) | H (T) | Γ (mm/s) | A0 (mm/s) |
---|
unsintered | Sextet (2) | 0.308 | 0.001 | 39.425 | 0.363 | 100 |
400 | Sextet (2) | 0.300 | −0.017 | 39.123 | 0.351 | 100 |
800 | Sextet (2) | 0.276 | −0.055 | 39.416 | 0.343 | 100 |
Table 9.
Magnetic data for CoFe2O4 sintered at 800 °C and 1000 °C.
Table 9.
Magnetic data for CoFe2O4 sintered at 800 °C and 1000 °C.
Reaction Temperature (Centigrade) | Ms (emu/g) | Hc (Oe) | Mr (emu/g) | nB |
---|
800 | 72.58 | 1005.33 | 34.71 | 3.05 |
1000 | 80.89 | 802.77 | 37.15 | 3.40 |
Table 10.
Magnetic data for CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C.
Table 10.
Magnetic data for CoRExFe2−xO4 (x = 0, 0.02; RE = La, Sm, Gd) sintered at 800 °C.
Sample | Ms (emu/g) | Hc (Oe) | Mr (emu/g) | nB |
---|
none | 72.58 | 1005.33 | 34.71 | 3.05 |
La | 70.92 | 1254.00 | 37.40 | 3.00 |
Sm | 71.50 | 1367.66 | 38.16 | 3.03 |
Gd | 69.97 | 1351.25 | 38.68 | 2.96 |
Table 11.
Magnetic data for Co0.7Zn0.3LaxFe2−xO4 calcined at 800 °C.
Table 11.
Magnetic data for Co0.7Zn0.3LaxFe2−xO4 calcined at 800 °C.
Content (x) | Ms (emu/g) | Hc (Oe) | Mr (emu/g) | nB |
---|
0 | 83.51 | 301.75 | 25.00 | 3.54 |
0.01 | 80.02 | 250.97 | 29.58 | 3.40 |
0.05 | 65.22 | 200.90 | 19.63 | 2.81 |
0.10 | 64.02 | 200.89 | 19.04 | 2.81 |