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Topological states in superlattices of HgTe-class materials for engineering three-dimensional flat bands

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arxiv 2112.15548 v2 pith:QX2TFPAR submitted 2021-12-31 cond-mat.mtrl-sci cond-mat.mes-hall

Topological states in superlattices of HgTe-class materials for engineering three-dimensional flat bands

classification cond-mat.mtrl-sci cond-mat.mes-hall
keywords topologicalhgtesuperlatticesbandflatsemimetalthree-dimensionalbands
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In search of materials with three-dimensional flat band dispersions, using {\em ab-initio} computations, we investigate how topological phases evolve as a function of hydrostatic pressure and uniaxial strain in two types of superlattices: HgTe/CdTe and HgTe/HgSe. In short-period HgTe/CdTe superlattices, our analysis unveils the presence of isoenergetic nodal lines, which could host strain-induced three-dimensional flat bands at the Fermi level without requiring doping, when fabricated, for instance, as core-shell nanowires. In contrast, HgTe/HgSe short-period superlattices are found to harbor a rich phase diagram with a plethora of topological phases. Notably, the unstrained superlattice realizes an ideal Weyl semimetal with Weyl points situated at the Fermi level. A small-gap topological insulator with multiple band inversions can be obtained by tuning the volume: under compressive uniaxial strain, the material transitions sequentially into a Dirac semimetal to a nodal-line semimetal, and finally into a topological insulator with a single band inversion.

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