Transmission through a potential barrier in Luttinger liquids with a topological spin gap
N. Kainaris, S. T. Carr, A. D. Mirlin

TL;DR
This paper theoretically investigates electron transport through a potential barrier in a one-dimensional Luttinger liquid with a topological spin gap, revealing bound-state mediated tunneling and fractional spin zero-energy states.
Contribution
It introduces a model of a topological phase in a Luttinger liquid with a spin gap, analyzing how bound states enable tunneling and affect conductance and LDOS.
Findings
Presence of protected zero-energy bound states with fractional spin.
Finite LDOS below the bulk gap due to bound states.
Non-monotonic conductance behavior as a function of temperature.
Abstract
We study theoretically the transport of the one-dimensional single-channel interacting electron gas through a strong potential barrier in the parameter regime where the spin sector of the low-energy Luttinger liquid theory is gapped by interaction. This phase is of particular interest since it exhibits non-trivial interaction-induced topological properties. Using bosonization and an expansion in the tunneling strength, we calculate the conductance through the barrier as a function of the temperature as well as the local density of states (LDOS) at the barrier. Our main result concerns the mechanism of bound-state mediated tunneling. The characteristic feature of the topological phase is the emergence of protected zero-energy bound states with fractional spin located at the impurity position. By flipping the fractional spin the edge states can absorb or emit spinons and thus enable…
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