Interaction-induced crystalline topology of excitons
arXiv:2405.19394 · doi:10.1103/PhysRevLett.133.176601
Abstract
We apply the topological theory of symmetry indicators to interaction-induced exciton band structures in centrosymmetric semiconductors. Crucially, we distinguish between the topological invariants inherited from the underlying electron and hole bands, and those that are intrinsic to the exciton wavefunction itself. Focusing on the latter, we show that there exists a class of exciton bands for which the maximally-localised exciton Wannier states are shifted with respect to the electronic Wannier states by a quantised amount; we call these excitons shift excitons. Our analysis explains how the exciton spectrum can be topologically nontrivial and sustain exciton edge states in open boundary conditions even when the underlying noninteracting bands have a trivial atomic limit. We demonstrate the presence of shift excitons as the lowest energy neutral excitations of the Su-Schrieffer-Heeger model in its trivial phase when supplemented by local two-body interactions, and show that they can be accessed experimentally in local optical conductivity measurements.
11 pages, 5 figures
References in corpus (10)
- Topological Crystalline Insulators
- The space group classification of topological band insulators
- Mott insulators with boundary zeros
- Interacting topological quantum chemistry of Mott atomic limits
- Exciton topology and condensation in a model quantum spin Hall insulator
- Theory of topological exciton insulators and condensates in flat Chern bands
- Interacting Topological Quantum Chemistry in 2D: Many-body Real Space Invariants
- Chiral topological excitons in the monolayer transition metal dichalcogenides
- Characterization and classification of interacting (2+1)D topological crystalline insulators with orientation-preserving wallpaper groups
- Chiral Topological Excitons in a Chern Band Insulator
Cited by in corpus (11)
- Excitonic topology and quantum geometry in organic semiconductors
- Textured Exciton Insulators
- Interaction-Induced Second-Order Skin Effect
- Fibonacci-Modulation-Induced Multiple Topological Anderson Insulators
- Topological magnons and domain walls in twisted bilayer MoTe
- Exciton Berryology
- Topologically-enhanced exciton transport
- Berry Curvature of Low-Energy Excitons in Rhombohedral Graphene
- Optical selection rules of topological excitons in flat bands
- Rhombohedral graphite junctions as a platform for continuous tuning between topologically trivial and non-trivial electronic phases
- Symmetries in zero and finite center-of-mass momenta excitons