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First principles study of structure and properties of La- and Mn-modified BiFeO3
Affiliation:1. Institute for Nuclear Research and Nuclear Energy, Bulgarian Academy of Sciences, 72 Tzarigradsko Chaussee, 1784 Sofia, Bulgaria;2. Institute of General and Inorganic Chemistry, Bulgarian Academy of Sciences, Acad. G. Bonchev Str., Bl. 11, 1113 Sofia, Bulgaria;1. Department of Physics, Saurashtra University, Rajkot 360005, India;2. Tata Institute of Fundamental Research, Mumbai 400005, India;3. Dr. S.S. Bhatnagar University Institute of Chemical Engineering and Technology, Punjab University, Chandigarh 160014, India;4. Nano Material Analysis Centre, Korean Institute of Science and Technology, Seoul 136-79, South Korea;5. Inter University Accelerator Centre, New Delhi 110067, India;1. College of Materials Science and Engineering, Beijing University of Technology, Beijing 100124, China;2. School of Science, Tianjin University of Technology and Education, Tianjin 300222, China;3. School of Electronic Engineering, Tianjin University of Technology and Education, Tianjin 300222, China
Abstract:First principles calculations have been performed to study the effects of the La3+ and Mn3+ substitutions in the multiferroic BiFeO3. The real compositions Bi1−xLaxFeO3 and BiFe1−xMnxO3 with x = 0.0, 0.1, 0.2, 0.3 were modeled by substitution of one, two and three Bi3+ or Fe3+ by La3+ or Mn3+ in the orthorhombic BiFeO3 structure, respectively. Density functional theory within the generalized gradient approximation with Hubbard correction of Dudarev (GGA + U) and plane wave pseudo-potential approach has been used to track the changes that occur in the structural parameters, electronic structure, magnetic, optical and polarization properties of the modified BiFeO3. The substitution of one Bi3+ with La3+ increases the band gap energy whereas the augmentation of La3+ substitutes decreases it. The substitutions of Fe3+ with Mn3+ do not change the band gap energy. The calculations predicted larger polarization of the modified BiFeO3, antiferromagnetism for Bi1−xLaxFeO3 and small ferrimagnetism for BiFe1−xMnxO3. Better multiferroic properties are expected for BiFe1−xMnxO3 materials (x = 0.1, 0.2) due to the increasing polarization and ferrimagnetic behavior. The optical properties were estimated by the calculated imaginary and real parts of the dielectric function. The increase of La3+ and Mn3+ substitutes lead to lower absorption intensity at energy range 2–7 eV.
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