Chiral Hall effect in strained Weyl semimetals
Abstract
In this paper, the chiral Hall effect of strained Weyl semimetals without any external magnetic field is proposed. Electron-phonon coupling emerges in the low-energy fermionic sector through a pseudogauge potential. We show that, by using chiral kinetic theory, the chiral Hall effect appears as a response to a real time-varying electric field in the presence of structural distortion and it causes spatial chirality and charges separation in a Weyl system. We also show that the coupling of the electrons to acoustic phonons as a gapless excitation leads to emerging an optical absorption peak at , where is defined as a characteristic frequency associated with the pseudomagnetic field. We also propose the strain-induced planar Hall effect as another transport signature of the chiral-anomaly equation.
Cite
@article{arxiv.1911.07387,
title = {Chiral Hall effect in strained Weyl semimetals},
author = {Shiva Heidari and Reza Asgari},
journal= {arXiv preprint arXiv:1911.07387},
year = {2020}
}
Comments
7 pages, 3 figures (Introduction part and References are changed). To appear in Phys. Rev. B (2020)