English

Engineering Weyl phases and nonlinear Hall effects in T$_d$-MoTe$_2$

Materials Science 2020-07-29 v3 Mesoscale and Nanoscale Physics

Abstract

MoTe2_2 has recently attracted much attention due to the observation of pressure-induced superconductivity, exotic topological phase transitions, and nonlinear quantum effects. However, there has been debate on the intriguing structural phase transitions among various observed phases of MoTe2_2, and their connection to the underlying topological electronic properties. In this work, by means of density-functional theory (DFT+U) calculations, we investigate the structural phase transition between the polar Td_d and nonpolar 1T' phases of MoTe2_2 in reference to a hypothetical high-symmetry T0_0 phase that exhibits higher-order topological features. In the Td_d phase we obtain a total of 12 Weyl points, which can be created/annihilated, dynamically manipulated, and switched by tuning a polar phonon mode. We also report the existence of a tunable nonlinear Hall effect in Td_d-MoTe2_2, and propose the use of this effect as a probe for the detection of polarity orientation in polar (semi)metals. By studying the role of dimensionality, we identify a configuration in which a nonlinear surface response current emerges. The potential technological applications of the tunable Weyl phase and the nonlinear Hall effect are discussed.

Keywords

Cite

@article{arxiv.2001.08283,
  title  = {Engineering Weyl phases and nonlinear Hall effects in T$_d$-MoTe$_2$},
  author = {Sobhit Singh and Jinwoong Kim and Karin M. Rabe and David Vanderbilt},
  journal= {arXiv preprint arXiv:2001.08283},
  year   = {2020}
}
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