Molecular formations and spectra due to electron correlations in three-electron hybrid double-well qubits
Constantine Yannouleas, Uzi Landman

TL;DR
This paper uses full configuration-interaction calculations to analyze electron correlations in three-electron hybrid double-well qubits, revealing Wigner molecule formation and its spectroscopic signatures, with results aligning well with experiments.
Contribution
It demonstrates the importance of electron correlations in hybrid qubits and introduces FCI-based diagnostics to identify Wigner molecules, surpassing previous independent-particle models.
Findings
Strong suppression of energy gaps due to electron correlations
Appearance of avoided crossings linked to Wigner molecules
Agreement with recent experimental data
Abstract
We show that systematic full configuration-interaction (FCI) calculations enable prediction of the energy spectra and the intrinsic spatial and spin structures of the many-body wave functions as a function of the detuning parameter for the case of three-electron hybrid qubits based on GaAs asymmetric double quantum dots. Specifically, in comparison with the case of weak interactions and treating the entire three-electron double-dot hybrid qubit as an integral unit, it is shown that the predicted spectroscopic patterns, originating from strong electron correlations, manifest the formation of Wigner molecules (WMs). Signatures of WM formation include: (1) a strong suppression of the energy gaps relative to the non-interacting-electrons modeling, and (2) the appearance of a pair of avoided crossings arising between states associated with two-electron occupancies in the left and right…
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