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Elastic constants and thermodynamic properties of ZnSnP2 material

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2025
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Autori
Ouledali, Mohammed
Daoud, Salah
Zagorac, Dejan
Rekab-Djabri, Hamza
Članak u časopisu (Objavljena verzija)
Metapodaci
Prikaz svih podataka o dokumentu
Apstrakt
In this research, the elastic constants and several related parameters of ZnSnP2 ordered chalcopyrite semiconducting compound were investigated using first principle calculations. The fullpotential enhanced plane wave method (FP-LAPW) within the framework of density functional theory (DFT) as implemented in the Wien2k package was used. Although our results of C44 and C66 are slightly lower than those calculated using different methods in the literature, our values of the elastic constants Cij for ZnSnP2 are in good agreement compared to those previously reported. Present calculations of elastic constants suggest that the ZnSnP2 compound has a pseudo-cubic nature. The bulk and shear moduli were calculated employing the Voigt-Reuss-Hill (VRH) approximation. The Young modulus, the Poisson’s ratio, the Vickers hardness, the wave velocities, and the Debye temperature were also computed. Additionally, the quasi-harmonic Debye model was used to study temperature effects on the thermodynamic p...roperties of ZnSnP2 material. Similar behaviors of all the thermodynamic properties vs. temperature were observed in the literature for several materials with different crystallographic structures. The present study suggests great diversity of the elastic and thermodynamic properties which might have applications in advanced materials based on chalcopyrite structure.

Ključne reči:
ZnSnP2 compound / Elastic constants / Thermodynamic properties / FP-LAPW method
Izvor:
Journal of Innovative Materials in Extreme Conditions, 2025, 6, 1, 31-37

ISSN: 2738-0882

[ Google Scholar ]
Handle
https://hdl.handle.net/21.15107/rcub_vinar_15256
URI
https://vinar.vin.bg.ac.rs/handle/123456789/15256
Kolekcije
  • Journal of Innovative Materials in Extreme Conditions
  • Radovi istraživača
Institucija/grupa
Vinča
TY  - JOUR
AU  - Ouledali, Mohammed
AU  - Daoud, Salah
AU  - Zagorac, Dejan
AU  - Rekab-Djabri, Hamza
PY  - 2025
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/15256
AB  - In this research, the elastic constants and several related parameters of ZnSnP2 ordered chalcopyrite semiconducting compound were investigated using first principle calculations. The fullpotential enhanced plane wave method (FP-LAPW) within the framework of density functional theory (DFT) as implemented in the Wien2k package was used. Although our results of C44 and C66 are slightly lower than those calculated using different methods in the literature, our values of the elastic constants Cij for ZnSnP2 are in good agreement compared to those previously reported. Present calculations of elastic constants suggest that the ZnSnP2 compound has a pseudo-cubic nature. The bulk and shear moduli were calculated employing the Voigt-Reuss-Hill (VRH) approximation. The Young modulus, the Poisson’s ratio, the Vickers hardness, the wave velocities, and the Debye temperature were also computed. Additionally, the quasi-harmonic Debye model was used to study temperature effects on the thermodynamic properties of ZnSnP2 material. Similar behaviors of all the thermodynamic properties vs. temperature were observed in the literature for several materials with different crystallographic structures. The present study suggests great diversity of the elastic and thermodynamic properties which might have applications in advanced materials based on chalcopyrite structure.
T2  - Journal of Innovative Materials in Extreme Conditions
T1  - Elastic constants and thermodynamic properties of ZnSnP2 material
VL  - 6
IS  - 1
SP  - 31
EP  - 37
UR  - https://hdl.handle.net/21.15107/rcub_vinar_15256
ER  - 
@article{
author = "Ouledali, Mohammed and Daoud, Salah and Zagorac, Dejan and Rekab-Djabri, Hamza",
year = "2025",
abstract = "In this research, the elastic constants and several related parameters of ZnSnP2 ordered chalcopyrite semiconducting compound were investigated using first principle calculations. The fullpotential enhanced plane wave method (FP-LAPW) within the framework of density functional theory (DFT) as implemented in the Wien2k package was used. Although our results of C44 and C66 are slightly lower than those calculated using different methods in the literature, our values of the elastic constants Cij for ZnSnP2 are in good agreement compared to those previously reported. Present calculations of elastic constants suggest that the ZnSnP2 compound has a pseudo-cubic nature. The bulk and shear moduli were calculated employing the Voigt-Reuss-Hill (VRH) approximation. The Young modulus, the Poisson’s ratio, the Vickers hardness, the wave velocities, and the Debye temperature were also computed. Additionally, the quasi-harmonic Debye model was used to study temperature effects on the thermodynamic properties of ZnSnP2 material. Similar behaviors of all the thermodynamic properties vs. temperature were observed in the literature for several materials with different crystallographic structures. The present study suggests great diversity of the elastic and thermodynamic properties which might have applications in advanced materials based on chalcopyrite structure.",
journal = "Journal of Innovative Materials in Extreme Conditions",
title = "Elastic constants and thermodynamic properties of ZnSnP2 material",
volume = "6",
number = "1",
pages = "31-37",
url = "https://hdl.handle.net/21.15107/rcub_vinar_15256"
}
Ouledali, M., Daoud, S., Zagorac, D.,& Rekab-Djabri, H.. (2025). Elastic constants and thermodynamic properties of ZnSnP2 material. in Journal of Innovative Materials in Extreme Conditions, 6(1), 31-37.
https://hdl.handle.net/21.15107/rcub_vinar_15256
Ouledali M, Daoud S, Zagorac D, Rekab-Djabri H. Elastic constants and thermodynamic properties of ZnSnP2 material. in Journal of Innovative Materials in Extreme Conditions. 2025;6(1):31-37.
https://hdl.handle.net/21.15107/rcub_vinar_15256 .
Ouledali, Mohammed, Daoud, Salah, Zagorac, Dejan, Rekab-Djabri, Hamza, "Elastic constants and thermodynamic properties of ZnSnP2 material" in Journal of Innovative Materials in Extreme Conditions, 6, no. 1 (2025):31-37,
https://hdl.handle.net/21.15107/rcub_vinar_15256 .

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