TY - JOUR
T1 - DFT and experimental study of structural, optical and thermodynamic properties of perovskite SmAsO3 for optoelectronic applications
AU - Elhadi, Muawya
AU - Husain, Kakul
AU - khan, Amir Sohail
AU - Shahid, Hifsa
AU - Kriaa, Karim
AU - Alrefaee, Salhah Hamed
AU - Abduvalieva, Dilsora
AU - Nurmuhammedov, Anvar
AU - Tirth, Vineet
AU - Algahtani, Ali
AU - Zaman, Abid
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/11/1
Y1 - 2025/11/1
N2 - Perovskite materials have significant attention due to their versatile applications in the fields of electronic and optoelectronics. In this study, we investigated the different physical properties such as structural, electronic, mechanical, optical and thermodynamic properties of SmAsO3. The structural analysis revealed that material has orthorhombic structure. The calculated formation energy of (−2.1 eV/atom) indicates the thermodynamic stability of system. Electronic structure analysis reveal a band gap of 0.65 eV. Mechanical stability is confirmed through Born-Huang criteria, and mechanical properties indicates the ductile nature of the material. A Debye temperature of 394.1 K reflects strong interatomic bonding. Optical properties are studied in the energy range of 0–15 eV presenting that material have broad and good absorption in the visible energy range. Additionally, thermodynamic analysis confirms stability at high temperatures. These finding highlights SmAsO3 as a potential candidate for optoelectronic device applications.
AB - Perovskite materials have significant attention due to their versatile applications in the fields of electronic and optoelectronics. In this study, we investigated the different physical properties such as structural, electronic, mechanical, optical and thermodynamic properties of SmAsO3. The structural analysis revealed that material has orthorhombic structure. The calculated formation energy of (−2.1 eV/atom) indicates the thermodynamic stability of system. Electronic structure analysis reveal a band gap of 0.65 eV. Mechanical stability is confirmed through Born-Huang criteria, and mechanical properties indicates the ductile nature of the material. A Debye temperature of 394.1 K reflects strong interatomic bonding. Optical properties are studied in the energy range of 0–15 eV presenting that material have broad and good absorption in the visible energy range. Additionally, thermodynamic analysis confirms stability at high temperatures. These finding highlights SmAsO3 as a potential candidate for optoelectronic device applications.
KW - Optical properties
KW - SEM
KW - SmAsO perovskite
KW - Thermodynamic properties
KW - XRD
UR - http://www.scopus.com/inward/record.url?scp=105012880275&partnerID=8YFLogxK
U2 - 10.1016/j.physb.2025.417667
DO - 10.1016/j.physb.2025.417667
M3 - Article
AN - SCOPUS:105012880275
SN - 0921-4526
VL - 716
JO - Physica B: Condensed Matter
JF - Physica B: Condensed Matter
M1 - 417667
ER -