Electronic Wigner-Molecule Polymeric Chains in Elongated Silicon Quantum Dots and Finite-Length Quantum Wires

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Main Authors: Goldberg, Arnon, Yannouleas, Constantine, Landman, Uzi
Format: Preprint
Published: 2024
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_version_ 1866910510831632384
author Goldberg, Arnon
Yannouleas, Constantine
Landman, Uzi
author_facet Goldberg, Arnon
Yannouleas, Constantine
Landman, Uzi
contents The spectral properties of electrons confined in a wire-like quasi-one-dimensional (1D) elongated quantum dot (EQD) coupler between silicon qubits, are investigated with a newly developed valley-augmented unrestricted Hartree-Fock (va-UHF) method, generalized to include the valley degree of freedom treated as an isospin, allowing calculations for a large number of electrons. The lower energy symmetry-broken solutions of the self-consistent generalized Pople-Nesbet equations exhibit, for a confinement that has been modeled after an experimentally fabricated one in silicon, formation of Wigner-molecular polymeric (longitudinal) chains, initiating through charge accumulation at the edges of the finite-length quasi-1D wire. An increasing number of parallel zig-zag chains form as the number of electrons loaded into the confinement is increased, with the formation of newly added chains determined by the strength of the transverse harmonic confinement. The broken-symmetry va-UHF solutions, subsequently augmented by the quantum-mechanically required parity-restoration, go beyond the va-UHF single-determinant solution, predicting formation of entangled Wigner-molecular chains whose charge distributions obliterate the zig-zag organization of the broken-symmetry solutions. The symmetry-restored va-UHF methodology enables systematic investigations of multi-electron complex nano-scale confined structures that could be targeted for future imaging microscopy experiments in silicon and other materials (e.g., 1D domain walls in TMD materials), and quantum information utilization.
format Preprint
id arxiv_https___arxiv_org_abs_2406_05886
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Electronic Wigner-Molecule Polymeric Chains in Elongated Silicon Quantum Dots and Finite-Length Quantum Wires
Goldberg, Arnon
Yannouleas, Constantine
Landman, Uzi
Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Quantum Physics
The spectral properties of electrons confined in a wire-like quasi-one-dimensional (1D) elongated quantum dot (EQD) coupler between silicon qubits, are investigated with a newly developed valley-augmented unrestricted Hartree-Fock (va-UHF) method, generalized to include the valley degree of freedom treated as an isospin, allowing calculations for a large number of electrons. The lower energy symmetry-broken solutions of the self-consistent generalized Pople-Nesbet equations exhibit, for a confinement that has been modeled after an experimentally fabricated one in silicon, formation of Wigner-molecular polymeric (longitudinal) chains, initiating through charge accumulation at the edges of the finite-length quasi-1D wire. An increasing number of parallel zig-zag chains form as the number of electrons loaded into the confinement is increased, with the formation of newly added chains determined by the strength of the transverse harmonic confinement. The broken-symmetry va-UHF solutions, subsequently augmented by the quantum-mechanically required parity-restoration, go beyond the va-UHF single-determinant solution, predicting formation of entangled Wigner-molecular chains whose charge distributions obliterate the zig-zag organization of the broken-symmetry solutions. The symmetry-restored va-UHF methodology enables systematic investigations of multi-electron complex nano-scale confined structures that could be targeted for future imaging microscopy experiments in silicon and other materials (e.g., 1D domain walls in TMD materials), and quantum information utilization.
title Electronic Wigner-Molecule Polymeric Chains in Elongated Silicon Quantum Dots and Finite-Length Quantum Wires
topic Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Quantum Physics
url https://arxiv.org/abs/2406.05886