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Structural, Electronic and Optical Properties of Altermagnet Bulk <scp>MnBr<sub>2</sub></scp>

Ghaferah H. Al‐HazmiDepartment of Chemistry, College of Science Princess Nourah bint Abdulrahman University Riyadh Saudi ArabiaAbid ZamanDepartment of Physics Riphah International University Islamabad PakistanNaseem AkhterDepartment of Physics, College of Science Qassim University Buraydah Saudi ArabiaSalhah Hamed AlrefaeeDepartment of Chemistry, College of Science Taibah University Al‐Madina Yanbu Saudi ArabiaPervaiz AhmadDepartment of Physics, College of Science and Humanities Prince Sattam Bin Abdulaziz University Al‐Kharj Saudi ArabiaTatyana OrlovaDepartment of Physics and Its Teaching Methods Tashkent State Pedagogical University Tashkent UzbekistanAnvar NurmuhammedovWestern Caspian University Baku AzerbaijanVineet TirthCentre for Engineering and Technology Innovations King Khalid University Abha Asir Saudi ArabiaAli AlgahtaniMechanical Engineering Department, College of Engineering King Khalid University Abha Asir Saudi ArabiaN. M. A. HadiaDepartment of Physics, College of Science Jouf University Sakaka Al‐Jouf Saudi Arabia
ABI

Abstract

ABSTRACT Spontaneous time‐reversal symmetry breaking phases are highly desirable due to their unique physical characteristics, low‐dissipation electronic and spin responses, and potential applications in information technology. Altermagnets are distinguished by their unique spin‐splitting properties that are not governed by conventional exchange interactions but instead arise from an unconventional symmetry‐driven mechanism. Herein, we study the structural, electronic, and optical properties of altermagnet MnBr 2 . The material has a rutile structure with lattice constants of a = b = 6.53315 Å, and c = 3.99758 Å. The antiferromagnetic state (AFM) was found to be more stable than the ferromagnetic state (FM) by calculating the energy difference between the FM and AFM states. To ensure thermodynamic stability, we calculated the formation energy, and the negative formation indicates that it is thermodynamically stable. We also calculated the phonon dispersion curve to ensure dynamic stability. The electronic band structure is calculated and found to exhibit the semiconducting nature of MnBr 2 . We found the band splitting of 120 meV, indicating the altermagnet nature of MnBr 2 . Furthermore, we investigated the optical parameters like the complex dielectric function, refractive index, absorption coefficient, reflectivity, and energy loss function in the energy range of 0–10 eV. Based on the obtained results, it can be suggested that MnBr 2 may be a potential candidate for spintronic applications.

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