English

One-dimensional channel for Dirac electrons in a 3D topological insulator

Materials Science 2012-05-29 v3 Mesoscale and Nanoscale Physics

Abstract

Topological insulators represent a new state of matter where the topological nature of the bulk bands dictates the existence of a surface state with unique properties. These materials are predicted to host exotic states such as Majorana Fermions and 1D chiral modes, many of which require a delicate tuning of the surface state properties near the Dirac point. Using scanning tunneling microscopy (STM) on the prototypical topological insulator Bi2Te3, we have discovered one-dimensional topographic stripes which induce spatially modulated changes in the electronic structure. Direct magnetic field measurements reveal a striped pattern of Landau level energies, which can be used to realize spatial regions with alternating filling fractions. When the chemical potential is properly tuned, the observed modulation would dictate the existence of topological 1D chiral modes at the boundaries between the stripes, and provide a platform for the experimental realization of 1D dissipationless quantum wires in topological insulators. Our discovery that the surface state dispersion is modulated over nanometer length scales by an intrinsic topographic route represents a new paradigm for controlling the properties of Dirac electrons.

Keywords

Cite

@article{arxiv.1203.0020,
  title  = {One-dimensional channel for Dirac electrons in a 3D topological insulator},
  author = {Yoshinori Okada and Wenwen Zhou and Chetan. Dhital and D. Walkup and Ying Ran and Z. Wang and Stephen D. Wilson and V. Madhavan},
  journal= {arXiv preprint arXiv:1203.0020},
  year   = {2012}
}

Comments

This paper has been withdrawn due to major changes. The improved version would be submitted elsewhere