Non-Hermitian Higher-Order Dirac Semimetals
Abstract
In this article we study 3D non-Hermitian higher-order Dirac semimetals (NHHODSMs). Our focus is on -symmetric non-Hermitian systems where we investigate inversion () or time-reversal () symmetric models of NHHODSMs having real bulk spectra. We show that they exhibit the striking property that the bulk and surfaces are anti-PT and PT symmetric, respectively, and so belong to two different topological classes realizing a novel non-Hermitian topological phase which we call a \emph{hybrid-PT topological phases}. Interestingly, while the bulk spectrum is still fully real, we find that exceptional Fermi-rings (EFRs) appear connecting the two Dirac nodes on the surface. This provides a route to probe and utilize both the bulk Dirac physics and exceptional rings/points on equal footing. Moreover, particularly for -NHHODSMs, we also find real hinge-arcs connecting the surface EFRs. We show that this higher-order topology can be characterized using a biorthogonal real-space formula of the quadrupole moment. Furthermore, by applying Hermitian -symmetric perturbations, we discover various novel phases, particularly: (i) an intrinsic -NHHODSM having hinge arcs and gapped surfaces, and (ii) a novel -symmetric skin-topological HODSM which possesses both topological and skin hinge modes. The interplay between non-Hermition and higher-order topology in this work paves the way toward uncovering rich phenomena and hybrid functionality that can be readily realized in experiment.
Cite
@article{arxiv.2106.14914,
title = {Non-Hermitian Higher-Order Dirac Semimetals},
author = {Sayed Ali Akbar Ghorashi and Tianhe Li and Masatoshi Sato and Taylor L. Hughes},
journal= {arXiv preprint arXiv:2106.14914},
year = {2021}
}
Comments
4 figures