Preservation of Topological Surface States in Millimeter-Scale Transferred Membranes
arXiv:2405.13228 · doi:10.1021/acs.nanolett.4c00008
Abstract
Ultrathin topological insulator membranes are building blocks of exotic quantum matter. However, traditional epitaxy of these materials does not facilitate stacking in arbitrary orders, while mechanical exfoliation from bulk crystals is also challenging due to the non-negligible interlayer coupling therein. Here we liberate millimeter-scale films of topological insulator BiSe, grown by molecular beam epitaxy, down to 3 quintuple layers. We characterize the preservation of the topological surface states and quantum well states in transferred BiSe films using angle-resolved photoemission spectroscopy. Leveraging the photon-energy-dependent surface sensitivity, the photoemission spectra taken with eV and eV photons reveal a transfer-induced migration of the topological surface states from the top to the inner layers. By establishing clear electronic structures of the transferred films and unveiling the wavefunction relocation of the topological surface states, our work paves the physics foundation crucial for the future fabrication of artificially stacked topological materials with single-layer precision.
4 figures
References in corpus (13)
- Topological origin of subgap conductance in insulating bilayer graphene
- Two-dimensional Dirac fermions in a topological insulator: transport in the quantum limit
- Quantum anomalous Hall effect from intertwined moiré bands
- Electronic structure of quantum materials studied by angle-resolved photoemission spectroscopy
- Coexistence of the topological state and a two-dimensional electron gas on the surface of Bi2Se3
- Bulk Band Gap and Surface State Conduction Observed in Voltage-Tuned Crystals of the Topological Insulator BiSe
- Surface State Transport and Ambipolar Electric Field Effect in Bi2Se3 Nanodevices
- Epitaxial growth of topological insulator Bi2Se3 film on Si(111) with atomically sharp interface
- Disorder enabled band structure engineering of a topological insulator surface
- Designer Meron Lattice on the Surface of a Topological Insulator
- Magic angle conditions for twisted 3D topological insulators
- An Integrated Quantum Material Testbed with Multi-Resolution Photoemission Spectroscopy
- Layer-by-layer disentanglement of Bloch states via frequency-domain photoemission