4.6 Article

Fabry-Perot interferometry with gate-tunable 3D topological insulator nanowires

期刊

NANOTECHNOLOGY
卷 32, 期 43, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/1361-6528/ac1633

关键词

3D topological insulator nanowires; phase-coherent magnetotransport; electronic Fabry-Perot interferometry

资金

  1. MINECO (Spain) [MAT2017-82639]
  2. MINECO/AEI/FEDER Maria de Maeztu Program for units of Excellence [MDM2017-0711]
  3. Bavarian Ministry of Economic Affairs, Regional Development and Energy

向作者/读者索取更多资源

Three-dimensional topological insulator nanowires exhibit remarkable magnetotransport properties, with the ability to control interference patterns through tuning carrier density and length of gated sections. External magnetic fields and transverse asymmetry also play a role in influencing transport properties of the nanowires, showing similarities with other types of nanowires.
Three-dimensional topological insulator (3D TI) nanowires display remarkable magnetotransport properties that can be attributed to their spin-momentum-locked surface states such as quasiballistic transport and Aharonov-Bohm oscillations. Here, we focus on the transport properties of a 3D TI nanowire with a gated section that forms an electronic Fabry-Perot (FP) interferometer that can be tuned to act as a surface-state filter or energy barrier. By tuning the carrier density and length of the gated section of the wire, the interference pattern can be controlled and the nanowire can become fully transparent for certain topological surface-state input modes while completely filtering out others. We also consider the interplay of FP interference with an external magnetic field, with which Klein tunneling can be induced, and transverse asymmetry of the gated section, e.g. due to a top-gated structure, which displays an interesting analogy with Rashba nanowires. Due to its rich conductance phenomenology, we propose a 3D TI nanowire with gated section as an ideal setup for a detailed transport-based characterization of 3D TI nanowire surface states near the Dirac point, which could be useful towards realizing 3D TI nanowire-based topological superconductivity and Majorana bound states.

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