English

Observation of spin Nernst photocurrents in topological insulators

Mesoscale and Nanoscale Physics 2018-10-31 v1

Abstract

The theoretical prediction of topological insulators in 2007 triggered tremendous interest. They are of fundamental interest because of their topological twist in k-space, which comes along with unidirectional, spin-polarized surface-state currents, required for spin-optoelectronics. This property makes topological insulators on one hand perfect materials for optically generated, ultrafast spin-bunches spin-current sources for the generation of THz radiation. On the other hand, those spin-polarized surface-state currents when generated by a voltage lead to large spin Hall effects, or when generated by a temperature gradient to the thermal analogue, the spin Nernst effect. Both mutually convert charge/ heat currents into transverse spin currents leading to spin accumulations. By connecting both research fields, we show the evidence of heat-transport related spin Hall effects that can be extracted from opto-transport experiments. This heat-driven spin Nernst effect drives a transverse spin-current and affects the optical spin-orientation in the three-dimensional topological insulator. This manifests as a modification of the circular polarization-dependent photocurrent. We illuminate the detailed thermocurrent distribution, including the influence of edges and contacts, in spatially resolved current maps.

Keywords

Cite

@article{arxiv.1810.12799,
  title  = {Observation of spin Nernst photocurrents in topological insulators},
  author = {T. Schumann and N. Meyer and G. Mussler and J. Kampmeier and D. Grützmacher and E. Schmoranzerova and L. Braun and T. Kampfrath and J. Walowski and M. Münzenberg},
  journal= {arXiv preprint arXiv:1810.12799},
  year   = {2018}
}

Comments

15 pages, 4 figures