One-dimensional helical liquids can appear at boundaries of certain condensed matter systems. Two prime examples are the edge of a quantum spin Hall insulator and the hinge of a three-dimensional second-order topological insulator. For these materials, the presence of a helical state at the boundary serves as a signature of their nontrivial electronic bulk topology. Additionally, these boundary states are of interest themselves, as a novel class of strongly correlated low-dimensional systems with interesting potential applications. Here, we review existing results on such helical liquids in semiconductors. Our focus is on the theory, though we confront it with existing experiments. We discuss various aspects of the helical liquids, such as ...
Topological insulators and topological superconductors are novel states of matter.One of the most ch...
We theoretically investigate the tunneling spectroscopy of a system of two parallel one-dimensional ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2018.Cataloged from PD...
One-dimensional helical liquids can appear at boundaries of certain condensed matter systems. Two pr...
Topology in condensed matter physics manifests itself in the emergence of edge or surface states pro...
Helical liquids are one-dimensional quantum many-body systems where the low-energy excitations have ...
Spin-momentum locking in a semiconductor device with strong spin-orbit coupling (SOC) is thought to ...
The discovery of three-dimensional (3D) topological insulators opens a gateway to generate unusual p...
The quantum Spin Hall Insulator (QSHI) is a two-dimensional variant of a novel class of materials ch...
A single pair of helical edge states as realized at the boundary of a quantum spin Hall insulator is...
Electrical currents in a quantum spin Hall insulator are confined to the boundary of the system. The...
The interplay between bulk spin-orbit coupling and electron-electron interactions produces umklapp s...
We report a theoretical study of electron transport along helical organic molecules subject to an ex...
The interplay between bulk spin-orbit coupling and electron-electron interactions produces umklapp s...
In the context of one-dimensional fermionic systems, helical Luttinger liquids are characterized not...
Topological insulators and topological superconductors are novel states of matter.One of the most ch...
We theoretically investigate the tunneling spectroscopy of a system of two parallel one-dimensional ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2018.Cataloged from PD...
One-dimensional helical liquids can appear at boundaries of certain condensed matter systems. Two pr...
Topology in condensed matter physics manifests itself in the emergence of edge or surface states pro...
Helical liquids are one-dimensional quantum many-body systems where the low-energy excitations have ...
Spin-momentum locking in a semiconductor device with strong spin-orbit coupling (SOC) is thought to ...
The discovery of three-dimensional (3D) topological insulators opens a gateway to generate unusual p...
The quantum Spin Hall Insulator (QSHI) is a two-dimensional variant of a novel class of materials ch...
A single pair of helical edge states as realized at the boundary of a quantum spin Hall insulator is...
Electrical currents in a quantum spin Hall insulator are confined to the boundary of the system. The...
The interplay between bulk spin-orbit coupling and electron-electron interactions produces umklapp s...
We report a theoretical study of electron transport along helical organic molecules subject to an ex...
The interplay between bulk spin-orbit coupling and electron-electron interactions produces umklapp s...
In the context of one-dimensional fermionic systems, helical Luttinger liquids are characterized not...
Topological insulators and topological superconductors are novel states of matter.One of the most ch...
We theoretically investigate the tunneling spectroscopy of a system of two parallel one-dimensional ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2018.Cataloged from PD...