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Topological insulators belong to a new quantum state of matter that is currently one of
the most recognized research fields in condensed matter physics. Strained bulk HgTe
and HgTe/HgCdTe quantum well structures are currently one of few topological insulator
material systems suitable to be studied in transport experiments. In addition
HgTe quantum wells provide excellent requirements for the conduction of spintronic
experiments. A fundamental requirement for most experiments, however, is to reliably
pattern these heterostructures into advanced nano-devices. Nano-lithography on this
material system proves to be challenging because of inherent temperature limitations,
its high reactivity with various metals and due to its properties as a topological insulator.
The current work gives an insight into why many established semiconductor
lithography processes cannot be easily transferred to HgTe while providing alternative
solutions. The presented developments include novel ohmic contacts, the prevention
of metal sidewalls and redeposition fences in combination with low temperature
(80 °C) lithography and an adapted hardmask lithography process utilizing a sacrificial
layer. In addition we demonstrate high resolution low energy (2.5 kV) electron beam
lithography and present an alternative airbridge gating technique. The feasibility of
nano-structures on HgTe quantum wells is exemplarily verified in two separate transport
experiments. We are first to realize physically etched quantum point contacts
in HgTe/HgCdTe high mobility 2DEGs and to prove their controllability via external
top-gate electrodes. So far quantum point contacts have not been reported in TI
materials. However, these constrictions are part of many proposals to probe the nature
of the helical quantum spin Hall edge channels and are suggested as injector and
detector devices for spin polarized currents. To confirm their functionality we performed
four-terminal measurements of the point contact conductance as a function of
external gate voltage. Our measurements clearly exhibit quantized conductance steps
in 2e2/h, which is a fundamental characteristic of quantum point contacts. Furthermore
we conducted measurements on the formation and control of collimated electron beams, a key feature to realize an all electrical spin-optic device. In a second study
several of the newly developed lithography techniques were implemented to produce
arrays of nano-wires on inverted and non-inverted HgTe quantum well samples. These
devices were used in order to probe and compare the weak antilocalization (WAL) in
these structures as a function of magnetic field and temperature. Our measurements
reveal that the WAL is almost an order of magnitude larger in inverted samples. This
observation is attributed to the Dirac-like dispersion of the energy bands in HgTe quantum
wells. The described lithography has already been successfully implemented and
adapted in several published studies. All processes have been optimized to guarantee
a minimum effect on the heterostructure’s properties and the sample surface, which is
especially important for probing the topological surface states of strained HgTe bulk
layers. Our developments therefore serve as a base for continuous progress to further
establish HgTe as a topological insulator and give access to new experiments.
Unexpected edge conduction in mercury telluride quantum wells under broken time-reversal symmetry
(2015)
The realization of quantum spin Hall effect in HgTe quantum wells is considered a milestone in the discovery of topological insulators. Quantum spin Hall states are predicted to allow current flow at the edges of an insulating bulk, as demonstrated in various experiments. A key prediction yet to be experimentally verified is the breakdown of the edge conduction under broken time-reversal symmetry. Here we first establish a systematic framework for the magnetic field dependence of electrostatically gated quantum spin Hall devices. We then study edge conduction of an inverted quantum well device under broken time-reversal symmetry using microwave impedance microscopy, and compare our findings to a noninverted device. At zero magnetic field, only the inverted device shows clear edge conduction in its local conductivity profile, consistent with theory. Surprisingly, the edge conduction persists up to 9 T with little change. This indicates physics beyond simple quantum spin Hall model, including material-specific properties and possibly many-body effects.