Pressure induced electronic structure transformation of topological semimetal
arXiv:1908.06494
Abstract
We study the electronic structure change of yttrium trihydride by applying a hydrostatic pressure. At zero pressure, has the structure with energy favored symmetry group (165). From first principle calculation, we argue that the band crossings are caused by overlapping of an electron- and hole-like bands. Besides the space inversion symmetry () and the time reversal symmetry, the band structure also exhibits an approximate particle-hole symmetry. Thus, can be viewed as a pseudo nodal surface semimetal belongs to class BDI of the ten-fold AZ+ classifications of gapless topological matter. As pressure increases, the approximate particle-hole symmetry is gradually broken and the pseudo nodal surface turns into a nodal ring belonging to the class AI with fewer non-spatial symmetries. Also, the nodal ring is shrinking in the process. At about GPa, which is higher than the reported structure phase transition pressure GPa, the nodal ring shrinks to a nodal point. When above GPa, all band crossings are gapped out and becomes a trivial insulator eventually.
14 pages, 2 figures