Affiliation:
1. Forschungszentrum Jülich
2. Jülich Aachen Research Alliance
Abstract
Three-dimensional topological insulators (TIs) host helical Dirac
surface states at the interface with a trivial insulator. In
quasi-one-dimensional TI nanoribbon structures the wave function of
surface charges extends phase-coherently along the perimeter of the
nanoribbon, resulting in a quantization of transverse surface modes.
Furthermore, as the inherent spin-momentum locking results in a Berry
phase offset of \piπ
of self-interfering charge carriers an energy gap within the surface
state dispersion appears and all states become spin-degenerate. We
investigate and compare the magnetic field dependent surface state
dispersion in selectively deposited Bi_22Te_33
TI micro- and nanoribbon structures by analysing the gate voltage
dependent magnetoconductance at cryogenic temperatures. While in wide
microribbon devices the field effect mainly changes the amount of bulk
charges close to the top surface we identify coherent transverse surface
states along the perimeter of the nanoribbon devices responding to a
change in top gate potential. We quantify the energetic spacing in
between these quantized transverse subbands by using an electrostatic
model that treats an initial difference in charge carrier densities on
the top and bottom surface as well as remaining bulk charges. In the
gate voltage dependent transconductance we find oscillations that change
their relative phase by \piπ
at half-integer values of the magnetic flux quantum applied coaxial to
the nanoribbon, which is a signature for a magnetic flux dependent
topological phase transition in narrow, selectively deposited TI
nanoribbon devices.
Funder
Bundesministerium für Bildung und Forschung
Deutsche Forschungsgemeinschaft
Helmholtz-Gemeinschaft
Cited by
12 articles.
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