Spatially Separated Spin Carriers in Spin-Semiconducting Graphene Nanoribbons

ORAL

Abstract

A graphene nanoribbon with sawtooth edges has a ferromagnetic ground state. Using first-principles and tight-binding model calculations, we show that, under a transverse electrical field, the sawtooth graphene nanoribbons become a spin semiconductor whose charge carriers are not only spin polarized in energy space but also spatially separated at different edges. Low-energy excitation produces spin-up electrons localized at one edge and spin-down holes at the opposite edge, and the excitation energy of spin carries can be tuned by the electric field to reach a new state of spin gapless semiconductor. Also, the spin semiconducting states are shown to be robust against at least 10{\%} edge disorder. These features demonstrate a good tunability of spin carriers for spintronics applications.

Authors

  • Zhengfei Wang

    Department of Materials Science and Engineering, University of Utah, University of Utah

  • Shuo Jin

    Beihang University

  • Feng Liu

    Department of Materials Science and Engineering, University of Utah, University of Utah, Univ of Utah, Department of Materials Science and Engineering, University of Utah, Salt Lake City, Utah 84112, USA