Phase Diagrams for the $\nu$ = 1/2 Fractional Quantum Hall Effect in Electron Systems Confined to Symmetric, Wide GaAs Quantum Wells
J. Shabani, Y. Liu, M. Shayegan, L. N. Pfeiffer, K.W. West, K.W., Baldwin

TL;DR
This study experimentally explores the stability of the fractional quantum Hall effect at filling factor 1/2 in wide GaAs quantum wells, revealing phase transitions influenced by well width, electron density, and charge symmetry, and supporting a two-component state description.
Contribution
First comprehensive phase diagrams for the $ u=1/2$ FQHE in wide GaAs quantum wells, linking stability to well width, density, and charge symmetry, and highlighting the role of inter-layer interactions.
Findings
$ u=1/2$ FQHE is stable only in intermediate densities with symmetric charge distribution.
Stability range of $ u=1/2$ FQHE decreases with increasing well width.
Linear relationship between $ riangle_{SAS}$ and density at phase boundary.
Abstract
We report an experimental investigation of fractional quantum Hall effect (FQHE) at the even-denominator Landau level filling factor = 1/2 in very high quality wide GaAs quantum wells, and at very high magnetic fields up to 45 T. The quasi-two-dimensional electron systems we study are confined to GaAs quantum wells with widths ranging from 41 to 96 nm and have variable densities in the range of to cm. We present several experimental phase diagrams for the stability of the FQHE in these quantum wells. In general, for a given , the 1/2 FQHE is stable in a limited range of intermediate densities where it has a bilayer-like charge distribution; it makes a transition to a compressible phase at low densities and to an insulating phase at high densities. The densities at which the FQHE is stable are…
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