Study of electronic, magneto-optical and transport properties of double perovskite Ca2XMnO6 (X = Ti, Cr) under uniaxial compressive strain by using a DFT method

Author:

Laghzaoui S.1,Fakhim Lamrani A.12,Ahl Laamara R.13,Maskar E.1,Laref Amel4,Prasad Mattipally5,Sivakumar J.5,Rai D. P.6ORCID

Affiliation:

1. LPHE-Modeling and Simulation, Faculty of Sciences, Mohammed V, University in Rabat, Rabat, Morocco

2. ENS-Rabat Physics Department, Mohammed V University in Rabat, B. P. 5118, Morocco

3. Centre of Physics and Mathematics, CPM, Faculty of Sciences, Mohammed V University in Rabat, Rabat, Morocco

4. Department of Physics and Astronomy, College of Science, King Saud University, Riyadh 11451, Saudi Arabia

5. Department of Physics, University College of Science, Osmania University, Hyderabad 500007, Telangana, India

6. Physical Sciences Research Center (PSRC), Department of Physics, Pachhunga University College, Mizoram University, Aizawl 796001, Mizoram, India

Abstract

Under the effect of uniaxial compressive strain along [001]-direction, the electronic, magneto-optical, and electronic transport properties of double perovskite oxide were realized by substituting the Ti atom by Cr atom in Ca2TiMnO6 (CTMO). A first-principles method within the various approximations (PBEsol-GGA, GGA+U, YS-PBE0 and TB-mBJ) has been employed. The analysis of the electronic structure reveals that the compound Ca2CrMnO6 (CCMO) has a half-metallic (HM) ferromagnet (FM) nature which attributes to hybridization between Cr-3[Formula: see text], Mn-3[Formula: see text] and O-2[Formula: see text] states. CTMO exhibits an integer value of magnetic moment 3 [Formula: see text]. However, CCMO exhibits the half-metallicity (HM) under compressive strain from −2% to −5% with the total magnetic moment, a value of 5 [Formula: see text]. CCMO possesses a mediocre spin-down bandgap ([Formula: see text]2 eV) optimum for thermoelectricity and optoelectronics. The optical properties within GGA+U reveal that the CCMO can absorb light under all frequencies. We have calculated the Seebeck coefficient, and electrical and electronic thermal conductivities to determine the thermoelectric (TE) figure of merit (ZT), which is found to be approaching 1 at room temperature considering the spin-down electrons. This compound CCMO may be used for optoelectronic, solar cell, and TE applications due to its amazing properties.

Publisher

World Scientific Pub Co Pte Ltd

Subject

Condensed Matter Physics,Statistical and Nonlinear Physics

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