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Computational investigation on physical properties of lead based perovskite RPbBr3 (R = Cs, Hg, and Ga) materials for photovoltaic applications

Muhammad Khuram ShahzadInstitute of Physics, Khwaja Fareed University of Engineering and Information Technology, Rahim Yar Khan, 64200, Pakistan. [email protected]Shoukat HussainInstitute of Physics, Khwaja Fareed University of Engineering and Information Technology, Rahim Yar Khan, 64200, PakistanGhulam Abbas AshrafNew Uzbekistan University, Mustaqillik Ave. 54, 100007, Tashkent, UzbekistanMuhammad Raheel KhanJoint Doctoral School, Silesian University of Technology, Akademicka 2A, 44-100, Gliwice, PolandVineet TirthMechanical Engineering Department, College of Engineering, King Khalid University, 61421, Abha, Asir, Kingdom of Saudi ArabiaHassan AlqahtaniDepartment of Mechanical Engineering, Taibah University, 42353, Medina, Kingdom of Saudi ArabiaAli AlgahtaniMechanical Engineering Department, College of Engineering, King Khalid University, 61421, Abha, Asir, Kingdom of Saudi ArabiaTawfiq Al‐MughanamDepartment of Mechanical Engineering, College of Engineering, King Faisal University, P. O. Box 380, 31982, Al-Ahsa, Kingdom of Saudi ArabiaAdnan KhalilInstitute of Physics, Khwaja Fareed University of Engineering and Information Technology, Rahim Yar Khan, 64200, PakistanWaqar Azeem
Scientific Reportsjournal2024en
ABI

Аннотация

In the modern era, the major problem is solving energy production and consumption. For this purpose, perovskite materials meet these issues and fulfill energy production at a low cost. Density functional theory and the Cambridge Serial Total Energy Package (CASTEP) are used to examine the characteristics of the cubic inorganic perovskites RPbBr3 (R = Cs, Hg, and Ga). In the context of the generalized gradient approximation (GGA), the ultrasoft pseudo-potential plane wave technique and the Perdew–Burke–Ernzerhof exchange–correlation functional are used for investigations. Structural, mechanical, electronics, and optical properties are investigated using CASTEP code. According to structural properties, compounds have a cubic nature with space 221 (Pm3m). Compounds formation energy (− 3.46, − 2.21, and − 3.14 eV)of (CsPbBr3, HgPbBr3, and GaPbBr3) and phonon calculations are studied and find that compounds are stable. The results of our investigation show that the compounds have narrow bandgaps of direct kind, with 1.85 eV for CsPbBr3, 1.56 eV for HgPbBr3, and 1.71 eV for GaPbBr3, respectively, indicating that they may be used to improve conductivity. Additionally, anisotropy (2.135, 3.651, 10.602), Pugh’s ratio (1.87, 2.25, 2.14), and Poison’s ratio (0.27, 0.31, 0.29) are traits that the compounds (CsPbBr3, HgPbBr3, GaPbBr3) display a ductile nature. The CsPbBr3 compound showed significant optical conductivity and absorption in terms of their optical properties, especially in the visible region, which makes them suitable for use in solar cell applications as well as for LED applications.

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