| Literature DB >> 35710589 |
R Sewak1,2, C C Dey3,4, D Toprek5.
Abstract
Temperature dependent phase transformation behavior in cobalt from hexagonal close-packed (hcp) to face centered cubic (fcc) has been found to be contradictory to that reported earlier. It is found that hcp phase stabilizes at both low and high temperature ([Formula: see text]873 K) while fcc phase is stabilized at [Formula: see text]500 K. At 298 K, hcp Co has been found to be predominant ([Formula: see text]70%) where hcp magnetic phase is [Formula: see text]60%. At 973 K, hcp phase is again predominant ([Formula: see text]73%), but it is mainly the non-magnetic phase ([Formula: see text]67%). Contrary to present results, it was found earlier that fcc phase was stabilized at high temperature and hcp to fcc transformation occured at [Formula: see text]700 K. Present results from perturbed angular correlation measurements, therefore, requires a new theoretical interpretation for Co phase transformation. From present measurements, hyperfine magnetic fields in Co at room temperature for the hcp and fcc phases have been found to be 18.7(6) and 12.8(3) T, much lower than earlier reported results. The hyperfine magnetic fields at [Formula: see text]Ta impurity atom have been calculated by density functional theory (DFT) employing the full potential (linearized) augmented plane wave method (FP-LAPW). Present calculated results for both hcp and fcc phases corroborate our experimental results.Entities:
Year: 2022 PMID: 35710589 PMCID: PMC9203532 DOI: 10.1038/s41598-022-14302-x
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.996
PAC results for Co at three selected temperatures.
| Temp. | Comp. | Quadrupole interaction | Magnetic dipole interaction | |||||
|---|---|---|---|---|---|---|---|---|
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| (Mrad/s) | ( | ( | (Mrad/s) | ( | ( | |||
| 298 | 1 | 58.9 (4) | 0.38 (2) | 0 | 9 (1) | |||
| 2 | 16 (1) | 0 | 0 | 9 (1) | ||||
| 3 | 1154 (25) | 27 (7) | 65 (3) | |||||
| 4 | 823 (7) | 5 (2) | 17 (1) | |||||
| 298 | 1 | 59.5 (3) | 0.39 (2) | 0 | 10 (1) | |||
| 2 | 13.8 (6) | 0 | 0 | 9 (1) | ||||
| 3 | 1187 (24) | 22 (5) | 60 (3) | |||||
| 4 | 810 (7) | 9 (2) | 21 (1) | |||||
| 873 | 1 | 67.5 (2) | 0.16 (2) | 2.5 (6) | 64 (4) | |||
| 2 | 17 (1) | 0 | 0 | 11 (1) | ||||
| 3 | 935 (11) | 0 | 5 (1) | |||||
| 4 | 674 (3) | 0 | 20 (3) | |||||
| 973 | 1 | 67.1 (2) | 0.16 (2) | 3.0 (6) | 67 (4) | |||
| 2 | 16 (1) | 0 | 0 | 8 (1) | ||||
| 3 | 872 (8) | 0 | 6 (1) | |||||
| 4 | 676 (2) | 0 | 19 (1) | |||||
after annealing the sample.
Components 1 and 3 assigned to hcp while 2 and 4 assigned to fcc phase.
Figure 1Total PAC spectrum at 298 K in annealed sample (top) and its decomposed spectra (bottom); Left panel shows time spectra and right panel shows corresponding Fourier transforms.
Figure 2Total PAC spectrum at 873 K (top) and its decomposed spectra (bottom); Left panel shows time spectra and right panel shows corresponding Fourier transforms.
Figure 3Variations of , site fraction (f) and with temperature for the hcp (filled square) and fcc (filled circle) phases.
Figure 4Variations of along with their site fraction (f) and with temperature for the hcp (filled square) and fcc (filled circle) phases.
Figure 5Top: Variations of site fractions for total hcp (triangle) and total fcc (square) phases with temperature. Bottom: Variations of site fractions for total magnetic (circle) and total non-magnetic (star) components with temperature.
Comparison of calculated and experimental results of hyperfine and for hcp and fcc phases in Co at Ta impurity site.
| Phase | ||||||
|---|---|---|---|---|---|---|
| Cal. | Exp. | Cal. | Exp. | Cal. | Exp. | |
| hcp | 6.67 | 0.71 | 0.39 | 20.9 | ||
| fcc | 0.9543 | 1.55 | 0.00 | 0 | 13.3 | |
At 0 K.
For annealed sample at 298 K.
For annealed sample extrapolated to 0 K.
The lattice parameters a, b and c (given in Å) and the fractional coordinates of crystallographic non-equivalent positions of hcp P63/mmc (space group number: 194) and fcc (space group number: 225) crystal structure of Co getting by WIEN2k code[23] (second and third columns) and these parameters taken from other research papers (fourth and fifth columns).
| Crystal | WIEN2K calculation | Previous results[ | ||
|---|---|---|---|---|
| par. | hcp | fcc | hcp | fcc |
| a (Å) | 2.4850 | 3.5283 | 2.5071 | 3.5442 |
| b (Å) | 2.4850 | 3.5283 | 2.5071 | 3.5442 |
| c (Å) | 4.0327 | 3.5283 | 4.0686 | 3.5442 |
| 90, 90, 120 | 90, 90, 90 | 90, 90, 120 | 90, 90, 90 | |
| x | 0.3427 | 0.0030 | 0.3333 | 0.0000 |
| y | 0.6588 | 0.0020 | 0.6667 | 0.0000 |
| z | 0.2500 | 0.0000 | 0.2500 | 0.0000 |
Figure 6The different supercell models with a Co atom (blue colour) substituted by Ta probe (maroon colour) used for DFT calculations.
The calculated values in units of V/m, the asymmetry parameter values and the strength of the hyperfine magnetic field for cobalt hcp P63/mmc and fcc crystal structure.
| Probe | Lattice Site | |||
|---|---|---|---|---|
No probe (pure comp.) | Co1 | − 0.18 | 0.00 | − 8.73 |
| Co-Ta1 | − 6.64 | 0.71 | − 25.75 | |
| Co-Ta2 | − 2.25 | 0.00 | − 31.97 | |
No probe (pure comp.) | Co1 | – | – | − 8.00 |
| Co-Ta1 | 0.9543 | 0.00 | − 19.99 | |
| Co-Ta2 | 0.024 | 0.17 | − 21.85 | |