Imaging two-component nature of Dirac-Landau levels in the topological surface state of Bi2Se3
arXiv:1408.0873 · doi:10.1038/nphys3084
Abstract
Massless Dirac electrons in condensed matter have attracted considerable attention. Unlike conventional electrons, Dirac electrons are described in the form of two-component wave functions. In the surface state of topological insulators, these two components are associated with the spin degrees of freedom, hence governing the magnetic properties. Therefore, the observation of the two-component wave function provides a useful clue for exploring the novel spin phenomena. Here we show that the two-component nature is manifested in the Landau levels (LLs) whose degeneracy is lifted by a Coulomb potential. Using spectroscopic-imaging scanning tunneling microscopy, we visualize energy and spatial structures of LLs in a topological insulator Bi2Se3. The observed potential-induced LL splitting and internal structures of Landau orbits are distinct from those in a conventional electron system and are well reproduced by a two-component model Dirac Hamiltonian. Our model further predicts non-trivial energy-dependent spin-magnetization textures in a potential variation. This provides a way to manipulate spins in the topological surface state.
Revised version to appear in Nature Physics. Supplementary information is available at http://www.riken.jp/epmrt/Hanaguri/SI/Bi2Se3_2comp/SI.html
References in corpus (5)
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- Scanning Tunneling Spectroscopy of Graphene on Graphite
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Cited by in corpus (6)
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- Strong magneto-optical effects due to surface states in three-dimensional topological insulators
- Probing the nodal structure of Landau level wave functions in real space
- Unconventional quantum Hall effect in Floquet topological insulators
- Magnetic quantization in multilayer graphenes