AI Article Synopsis

  • The study investigates the optical conductivity and magnetotransport properties of top-gated devices made from the topological insulator BiSe, focusing on how different carrier types within the material interact.
  • Findings reveal that the topologically protected surfaces are somewhat shielded from gate control due to trivial band-bending states but still show significant mobility changes based on external gate bias.
  • The research highlights that the optical conductivity is largely influenced by the topological surface states and is particularly affected by scattering from trivial states, suggesting potential uses in future plasmonic device designs.

Article Abstract

We have performed an investigation into the optical conductivity and magnetotransport properties of top-gated devices patterned on the topological insulator BiSe in order to determine the relative effects of the different carrier species that exist within these novel materials. We find that the topologically protected surfaces within our samples are partially screened from the action of the gate by trivial band-bending states formed at the top surface of the topological insulator. Despite this, the mobility of the topological surface carriers is significantly affected by the application of an external gate bias. Additionally, we find that the optical conductivity response is dominated by the topologically protected surface states, and that the optical conductivity is particularly sensitive to the scattering caused by the topological surfaces coupling to trivial states, arising from the bulk or band-bending induced surface states. These results will have interesting applications to the design of future plasmonic devices that incorporate topological materials.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11501874PMC
http://dx.doi.org/10.1515/nanoph-2023-0690DOI Listing

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