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Two-dimensional Topological Quantum Chemistry and Catalog of Topological Materials
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We adapt the topological quantum chemistry formalism to layer groups, and apply it to study the band topology of 8,872 entries from the computational two-dimensional (2D) materials databases C2DB and MC2D. In our analysis, we find 4,073 topologically non-trivial or obstructed atomic insulator entries, including 905 topological insulators, 602 even-electron number topological semimetals, and 1,003 obstructed atomic insulators. We thus largely expand the library of known topological or obstructed materials in two dimensions, beyond the few hundreds known to date. We additionally classify the materials into four categories: experimentally existing, stable, computationally exfoliated, and not stable. We present a detailed analysis of the edge states emerging in a number of selected new materials, and compile a Topological 2D Materials Database (2D-TQCDB) containing the band structures and detailed topological properties of all the materials studied in this work. The methodology here developed is implemented in new programs available to the public, designed to study the topology of any non-magnetic monolayer or multilayer 2D material.
Forward citations
Cited by 3 Pith papers
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Symmetry-adapted irreducible representations, combined with transversality and radiation coupling, classify dark/bright BIC channels and Berry-phase behavior in 2D photonic crystals under C6v/C6 and tight-binding models.
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Movable Dirac Points with Ferroelectrics: Kink States and Berry Curvature Dipoles
Movable Dirac points in ferroelectric 2D materials control topological kink-state conductance and switch the Berry-curvature-dipole-induced second-harmonic Hall conductivity.
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