| Literature DB >> 34250434 |
Md Sabbir Akhanda1, S Emad Rezaei1, Keivan Esfarjani2,3,4, Sergiy Krylyuk5, Albert V Davydov5, Mona Zebarjadi1,2.
Abstract
Magneto-thermoelectric transport provides an understanding of coupled electron-hole-phonon current in topological materials and has applications in energy conversion and cooling. In this work, we study the Nernst coefficient, the magneto-Seebeck coefficient, and the magnetoresistance of single-crystalline Bi2Te3 under external magnetic field in the range of -3 T to 3 T and in the temperature range of 55 K to 380 K. Moreau's relation is employed to justify both the overall trend of the Nernst coefficient and the temperature at which the Nernst coefficient changes sign. We observe a non-linear relationship between the Nernst coefficient and the applied magnetic field in the temperature range of 55 K to 255 K. An increase in both the Nernst coefficient and the magneto-Seebeck coefficient is observed as the temperature is reduced which can be attributed to the increased mobility of the carriers at lower temperatures. First-principles density functional theory calculations were carried out to physically model the experimental data including electronic and transport properties. Simulation findings agreed with the experiments and provide a theoretical insight to justify the measurements.Entities:
Year: 2021 PMID: 34250434 PMCID: PMC8268759 DOI: 10.1103/PhysRevMaterials.5.015403
Source DB: PubMed Journal: Phys Rev Mater Impact factor: 3.989