Correlation energy, quantum phase transition, and bias potential effects in quantum Hall bilayers at nu=1
John Schliemann

TL;DR
This paper investigates the correlation energy, phase transition, and bias effects in quantum Hall bilayers at nu=1 using exact diagonalization, revealing layer decoupling and interlayer correlations near the phase boundary.
Contribution
It provides a detailed comparison between exact diagonalization and Hartree-Fock results, highlighting the behavior of pseudospin anisotropy and interlayer correlations across the phase transition.
Findings
Hartree-Fock overestimates energy above critical separation
Pseudospin anisotropy constant indicates strong interlayer correlations
Layer decoupling occurs beyond the critical layer separation
Abstract
We study the correlation energy, the effective anisotropy parameter, and quantum fluctuations of the pseudospin magnetization in bilayer quantum Hall systems at total filling factor nu=1 by means of exact diagonalizations of the Hamiltonian in the spherical geometry. We compare exact diagonalization results for the ground state energy with finite-size Hartree-Fock values. In the ordered ground state phase at small layer separations the Hartree-Fock data compare reasonably with the exact results. Above the critical layer separation, however, the Hartree-Fock findings still predict an increase in the ground state energy, while the exact ground state energy is in this regime independent of the layer separation indicating the decoupling of layers and the loss of spontaneous phase coherence between them. We also find accurate values for the pseudospin anisotropy constant whose dependence of…
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