Competition of Pairing and Nematicity in the Two-Dimensional Electron Gas

Author:

Schreiber Katherine A.1,Csáthy Gábor A.234

Affiliation:

1. Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA

2. Department of Physics and Astronomy, Purdue University, West Lafayette, Indiana 47907, USA;

3. Birck Nanotechnology Center, Purdue University, West Lafayette, Indiana 47907, USA

4. Purdue Quantum Science and Engineering Institute, Purdue University, West Lafayette, Indiana 47907, USA

Abstract

Due to its extremely rich phase diagram, the two-dimensional electron gas exposed to perpendicular magnetic fields has been the subject of intense and sustained study. One particularly interesting problem in this system is that of the half-filled Landau level, where the Fermi sea of composite fermions, a fractional quantum Hall state arising from a pairing instability of the composite fermions, and the quantum Hall nematic were observed in the half-filled N = 0, N = 1, and N ≥ 2 Landau levels, respectively. Thus, different ground states developed in different half-filled Landau levels. This situation has recently changed, when evidence for both the paired fractional quantum Hall state and the quantum Hall nematic was reported in the half-filled N = 1 Landau level. Furthermore, a direct quantum phase transition between these two ordered states was found. These results highlight an intimate connection between pairing and nematicity, which is a topic of current interest in several strongly correlated systems, in a well-understood and low-disorder environment.

Publisher

Annual Reviews

Subject

Condensed Matter Physics,General Materials Science

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1. Microscopic Model for Fractional Quantum Hall Nematics;Physical Review Letters;2024-06-05

2. Colloquium : Fracton matter;Reviews of Modern Physics;2024-01-05

3. Fractional quantum Hall effect at the filling factor ν = 5/2;Encyclopedia of Condensed Matter Physics;2024

4. Anomalous Reentrant 5/2 Quantum Hall Phase at Moderate Landau-Level-Mixing Strength;Physical Review Letters;2023-08-03

5. A highly correlated topological bubble phase of composite fermions;Nature Physics;2023-02-02

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