Quantum theory of bilayer quantum Hall smectics
Emiliano Papa, John Schliemann, Allan H. MacDonald, Matthew P.A., Fisher

TL;DR
This paper develops a coupled Luttinger liquid model to analyze bilayer quantum Hall stripe states, revealing their quantum fluctuations, stability conditions, and phase transitions, with implications for experimental observations in high mobility bilayer systems.
Contribution
It introduces a coupled Luttinger liquid framework that incorporates quantum fluctuations and assesses stability of stripe states in bilayer quantum Hall systems.
Findings
Stripe states exhibit enhanced low-temperature heat capacity.
Presence of interlayer back-scattering leads to phase transitions.
Predicted phase diagram matches experimental conditions.
Abstract
Mean-field theory predicts that bilayer quantum Hall systems at odd integer total filling factors can have stripe ground states in which the top Landau level is occupied alternately by electrons in one of the two layers. We report on an analysis of the properties of these states based on a coupled Luttinger liquid description that is able to account for quantum fluctuations of charge-density and position along each stripe edge. The soft modes associated with the broken symmetries of the stripe state lead to an unusual coupled Luttinger liquid system with strongly enhanced low-temperature heat capacity and strongly suppressed low-energy tunneling density of states. We assess the importance of the intralayer and interlayer back-scattering terms in the microscopic Hamiltonian, which are absent in the Luttinger liquid description, by employing a perturbative renormalization group approach…
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Taxonomy
TopicsQuantum and electron transport phenomena · Semiconductor Quantum Structures and Devices · Physics of Superconductivity and Magnetism
