Prediction of $\mathrm{TiRhAs}$ as a Dirac Nodal Line Semimetal via First-Principles Calculations
Sophie F. Weber, Ru Chen, Qimin Yan, Jeffrey B. Neaton

TL;DR
This paper predicts that TiRhAs is a topological Dirac nodal line semimetal with protected band crossings, anisotropic velocities, and surface states, making it a promising candidate for studying topological semimetal properties.
Contribution
First-principles calculations reveal TiRhAs as a topological Dirac nodal line semimetal with protected crossings and surface states, expanding the class of known topological materials.
Findings
TiRhAs hosts a Dirac nodal line protected by symmetry.
The nodal line exhibits highly anisotropic band velocities.
Surface calculations show the presence of drumhead surface states.
Abstract
Using first-principles calculations we predict that , a previously synthesized compound, is a Dirac nodal line (DNL) semimetal. The DNL in this compound is found to be protected both by the combination of inversion and time-reversal symmetry, and by a reflection symmetry, in the absence of spin-orbit coupling (SOC). Our calculations show that band velocities associated with the nodal line have a high degree of directional anisotropy, with in-plane velocities perpendicular to the nodal line between m/s. The crossings along the DNL are further found to exhibit a prominent and position-dependent tilt along directions perpendicular to the nodal line. We calculate indices based on parity eigenvalues at time-reversal invariant momenta and show that is topological. A tight-binding model fit from our…
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