| Literature DB >> 27384709 |
Showkat H Mir1, Prakash C Jha2, M S Islam3, Amitava Banerjee3, Wei Luo3, Shweta D Dabhi4, Prafulla K Jha5, R Ahuja3.
Abstract
In this work, density functional theory within the framework of generalized gradient approximation has been used to investigate the structural, elastic, mechanical, and phonon properties of lutetium monopnictides in rock-salt crystal structure. The spin orbit coupling and Hubbard-U corrections are included to correctly predict the essential properties of these compounds. The elastic constants, Young's modulus E, Poisson's ratio v, shear modulus G, anisotropy factor A and Pugh's ratio are computed. We found that all lutetium monopnictides are anisotropic and show brittle character. From the wave velocities along [100], [110] and [111] directions, melting temperature of lutetium monopnictides are predicted. Dynamical stability of these monopnictides has been studied by density functional perturbation theory.Entities:
Year: 2016 PMID: 27384709 PMCID: PMC4935863 DOI: 10.1038/srep29309
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
The lattice constant (Å) and Bulk modulus (GPa) of Lutetium monopnictides calculated using GGA+U approach.
| Property | LuN | LuP | LuAs | LuSb | LuBi |
|---|---|---|---|---|---|
| a | 4.72 | 5.51 | 5.68 | 6.08 | 6.23 |
| Expt. | 4.76 | 5.53 | 5.68 | 6.04 | 6.16 |
| Theory | 4.77 | 5.53 | 5.68 | 6.09 | 6.24 |
| 171.84 | 89.36 | 79.91 | 61.73 | 54.72 | |
| Expt. | – | – | 85 ± 3 | 53 ± 4 | – |
| Theory | 164.07 | 87.24 | 82.40 | 60.69 | 54.08 |
aRef. 40.
bRef. 41.
cRef. 8.
dRef. 16.
eRef. 5.
The elastic constants of lutetium monopnictides calculated using GGA+U approach with SOC.
| Compound | C11 | C12 | C44 | A | G | E | ν | G/B | C12-C44 |
|---|---|---|---|---|---|---|---|---|---|
| LuN | −(360.56) | −(77.48) | −(149.53) | (1.06) | (146.30) | (341.88) | (0.17) | (0.85) | (−72.05) |
| LuP | 215.15 (217.05) | 25.85 (25.52) | 52.45 (52.53) | 0.55 | 66.96 | 160.73 | 0.20 | 0.75 | −27.01 |
| LuAs | 188.58 (191.94) | 25.03 (23.59) | 43.74 (43.58) | 0.52 | 56.90 | 137.89 | 0.21 | 0.71 | −19.99 |
| LuSb | 149.88 (150.22) | 17.88 (17.48) | 26.58 (25.91) | 0.39 | 38.17 | 94.94 | 0.24 | 0.62 | −8.43 |
| LuBi | 126.63 (129.75) | 17.28 (17.21) | 21.11 (22.22) | 0.39 | 32.57 | 81.53 | 0.25 | 0.59 | −5.0 |
Values in the brackets are results obtained without SOC. Shear modulus (G), Young’s modulus (E), Cauchy pressure (C12−C44) in GPa. The elastic anisotropy (A), Poisson’s ratio (v) and Pugh’s (G/B) ratio are dimensionless quantities.
The mass density ρ (Kg/m3), longitudinal and shear wave velocities V, V (Km/s), and melting temperature T (K) of lutetium monopnictides.
| Tm ± 300 K | ||||||||
|---|---|---|---|---|---|---|---|---|
| LuN | 12.01 | 5.48 | 3.53 | 5.54 | 3.43 | 5.56 | 3.46 | 2683.91 |
| LuP | 8.21 | 5.14 | 2.53 | 4.60 | 3.42 | 4.40 | 3.45 | 1835.76 |
| LuAs | 9.08 | 4.59 | 2.53 | 4.08 | 3.04 | 3.89 | 2.79 | 1687.36 |
| LuSb | 8.79 | 4.13 | 2.19 | 3.53 | 2.77 | 3.31 | 2.45 | 1440.80 |
| LuBi | 10.60 | 3.50 | 1.43 | 3.00 | 2.30 | 2.82 | 2.06 | 1319.82 |
Figure 1The calculated phonon dispersion curves and phonon density of states of lutetium monopnictides in NaCl-type structure using GGA+U approach.