Stability subtlety of layered magnetic topological insulator MnBi<sub>2</sub>Te<sub>4</sub>
ORAL
Abstract
Ab initio description of two dimensional magnetic materials (2DMM) thermodynamics faces great challenges, due to the coexistence of different kinds of chemical bonding, as well as coupling between charge, lattice, and spin degrees of freedom. As an illustration of such challenges, we investigated the metastability of a layered magnetic material MnBi2Te4, which hosts the intrinsic quantum anomalous Hall effect but the crystal itself is hard to synthesize. We calculated the reaction free energy of Bi2Te3+MnTe→MnBi2Te4, considering electron, vibration and magnetic contributions based on state-of-the-art SCAN+rVV101 total energy calculations. We found MnBi2Te4 to be stable only within a short high temperature range, consistent with experiments. Fundamental interactions including SOC effect, vdW interaction, 2D weak magnetism and lattice vibration all contribute subtly to the high-temperature stability of MnBi2Te4, which exemplify that interplay of topology and magnetism can contribute to the stability of the material hosting it. These findings and methods pave a way for future high throughput discovery of novel 2DMM.
1H. Peng, Z. Yang, J. P. Perdew, and J Sun Phys. Rev. X 6, 041005 (2016).
1H. Peng, Z. Yang, J. P. Perdew, and J Sun Phys. Rev. X 6, 041005 (2016).
*This study was supported by DOE DE-SC0014208.
–
Presenters
-
Jinliang Ning
- Physics and Engineering Physics, Tulane University
- Tulane Univ