English

Spatially resolved study of backscattering in the quantum spin Hall state

Mesoscale and Nanoscale Physics 2013-04-26 v1

Abstract

The discovery of the Quantum Spin Hall state, and topological insulators in general, has sparked strong experimental efforts. Transport studies of the Quantum Spin Hall state confirmed the presence of edge states, showed ballistic edge transport in micron-sized samples and demonstrated the spin polarization of the helical edge states. While these experiments have confirmed the broad theoretical model, the properties of the QSH edge states have not yet been investigated on a local scale. Using Scanning Gate Microscopy to perturb the QSH edge states on a sub-micron scale, we identify well-localized scattering sites which likely limit the expected non-dissipative transport in the helical edge channels. In the micron-sized regions between the scattering sites, the edge states appear to propagate unperturbed as expected for an ideal QSH system and are found to be robust against weak induced potential fluctuations.

Keywords

Cite

@article{arxiv.1211.3917,
  title  = {Spatially resolved study of backscattering in the quantum spin Hall state},
  author = {Markus König and Matthias Baenninger and Andrei G. F. Garcia and Nahid Harjee and Beth L. Pruitt and C. Ames and Philipp Leubner and Christoph Brüne and Hartmut Buhmann and Laurens W. Molenkamp and David Goldhaber-Gordon},
  journal= {arXiv preprint arXiv:1211.3917},
  year   = {2013}
}

Comments

12 pages, including Supplemental Material

R2 v1 2026-06-21T22:39:37.885Z