TY - JOUR
T1 - Unlocking Phase-Dependent Physical Properties of BeLiF3 Fluoroperovskites for Solar Cell and Smart Window Applications
AU - Bibi, Nazia
AU - Ruiyu, Kang
AU - Zhuo, Xiaodi
AU - Li, Jianing
AU - Yang, Sen
N1 - Publisher Copyright:
© 2026 The American Ceramic Society.
PY - 2026/6
Y1 - 2026/6
N2 - Fluoroperovskites are crucial in materials research due to their exceptional optoelectronic properties and multifunctionality. Therefore, this study provides a comprehensive exploration of the physical properties of BeLiF3 fluoroperovskite employing first-principles computational methods based on density functional theory (DFT). Initially, two distinct α-BeLiF3 and β-BeLiF3 cubic phases were simulated by adding F atoms. According to Birch–Murnaghan calculations for structural optimization, both phases have a cubic crystalline structure with a space group Pm3m. The formation energy, mechanical, and thermodynamic studies all support the stability and synthesis of these materials. The Vienna ab initio simulation package (VASP) accurately determined the electronic band structures for α-BeLiF3 and β-BeLiF3, revealing direct band gaps of 1.60 and 7.58 eV, respectively. The optical properties, including refractive index, optical conductivity, absorption coefficients, and reflectivity, have been calculated and analyzed, providing crucial insights into how these materials respond to different photon energies. The elastic constant was evaluated to meet the stability criteria, confirming the material's mechanical stability and ductility and highlighting the potential of BeLiF3 for optoelectronic devices. Thermodynamic features, including sound velocity, Debye temperature, melting temperature, and compressibility, are calculated and compared. These combined structural, electronic, optical, mechanical, and thermodynamic results demonstrate that BeLiF3 fluoroperovskites are promising candidates for industrial applications, especially in optoelectronics such as solar cells and UV-protective smart windows. As a result, these findings can motivate additional computational and experimental studies.
AB - Fluoroperovskites are crucial in materials research due to their exceptional optoelectronic properties and multifunctionality. Therefore, this study provides a comprehensive exploration of the physical properties of BeLiF3 fluoroperovskite employing first-principles computational methods based on density functional theory (DFT). Initially, two distinct α-BeLiF3 and β-BeLiF3 cubic phases were simulated by adding F atoms. According to Birch–Murnaghan calculations for structural optimization, both phases have a cubic crystalline structure with a space group Pm3m. The formation energy, mechanical, and thermodynamic studies all support the stability and synthesis of these materials. The Vienna ab initio simulation package (VASP) accurately determined the electronic band structures for α-BeLiF3 and β-BeLiF3, revealing direct band gaps of 1.60 and 7.58 eV, respectively. The optical properties, including refractive index, optical conductivity, absorption coefficients, and reflectivity, have been calculated and analyzed, providing crucial insights into how these materials respond to different photon energies. The elastic constant was evaluated to meet the stability criteria, confirming the material's mechanical stability and ductility and highlighting the potential of BeLiF3 for optoelectronic devices. Thermodynamic features, including sound velocity, Debye temperature, melting temperature, and compressibility, are calculated and compared. These combined structural, electronic, optical, mechanical, and thermodynamic results demonstrate that BeLiF3 fluoroperovskites are promising candidates for industrial applications, especially in optoelectronics such as solar cells and UV-protective smart windows. As a result, these findings can motivate additional computational and experimental studies.
KW - BeLiF fluoroperovskites
KW - DFT study
KW - optoelectronic
KW - structural flexibility
KW - thermodynamic properties
KW - VASP code
UR - https://www.scopus.com/pages/publications/105040675059
U2 - 10.1111/jace.70862
DO - 10.1111/jace.70862
M3 - 文章
AN - SCOPUS:105040675059
SN - 0002-7820
VL - 109
JO - Journal of the American Ceramic Society
JF - Journal of the American Ceramic Society
IS - 6
M1 - e70862
ER -