Observation of emergent Dirac physics at the surfaces of acoustic higher-order topological insulators
arXiv:2203.09583 · doi:10.1002/advs.202201568
Abstract
Using three-dimensional (3D) sonic crystals as acoustic higher-order topological insulators (HOTIs), we discover two-dimensional (2D) surface states described by spin-1 Dirac equations at the interfaces between the two sonic crystals with distinct topology but the same crystalline symmetry. We find that the Dirac mass can be tuned by the geometry of the two sonic crystals. The sign reversal of the Dirac mass reveals a surface topological transition where the surface states exhibit zero refractive index behavior. When the surface states are gapped, one-dimensional (1D) hinge states emerge due to the topology of the gapped surface states. We confirm experimentally the zero refractive index behavior and the emergent topological hinge states. Our study reveals a multidimensional Wannier orbital control that leads to extraordinary properties of surface states and unveils an interesting topological mechanism for the control of surface waves.
References in corpus (15)
- Electric Multipole Moments, Topological Multipole Moment Pumping, and Chiral Hinge States in Crystalline Insulators
- -dimensional edge states of rotation symmetry protected topological states
- Reflection symmetric second-order topological insulators and superconductors
- Higher-order topological insulators and semimetals on the breathing Kagome and pyrochlore lattices
- Visualization of higher-order topological insulating phases in two-dimensional dielectric photonic crystals
- Direct observation of corner states in second-order topological photonic crystal slabs
- Photonic crystal nanocavity based on a topological corner state
- Acoustic realization of quadrupole topological insulators
- Low-threshold topological nanolasers based on second-order corner state
- Realization of an acoustic third-order topological insulator
- Experimental Observation of Higher-Order Topological Anderson Insulators
- Topolectrical-circuit octupole insulator with topologically protected corner states
- On-chip higher-order topological micromechanical metamaterials
- Realization of quasicrystalline quadrupole topological insulators in electrical circuits
- Persistence of Monoclinic Crystal Structure in Three-Dimensional Second-Order Topological Insulator Candidate 1T'-MoTe2 Thin Flake without Structural Phase transition