Charging Effects in a Quantum Wire with Leads
V.A. Sablikov, S.V. Polyakov, M. Buttiker

TL;DR
This paper models a quantum wire coupled to reservoirs, analyzing how Coulomb and exchange interactions influence charge distribution, conductance oscillations, and stability under various conditions.
Contribution
It introduces a self-consistent Hartree-Fock model for quantum wires with reservoirs, revealing charge effects, conductance oscillations, and potential instabilities.
Findings
Charge can be positive, negative, or neutral depending on system parameters.
Exchange interactions significantly enhance Friedel oscillations near contacts.
Far from equilibrium, the system exhibits multistability and potential fluctuations.
Abstract
We investigate the distribution of the electron density and the potential in a quantum wire coupled to reservoirs, treating this structure as a unified quantum system and taking into account the Coulomb interaction of electrons. The chemical potential difference that exists between a decoupled, isolated quantum wire and the reservoirs gives rise to charge transfer in the coupled system. We show that the quantum wire can be charged positively or negatively or remain neutral as a whole, depending on such factors as the wire radius and the background charge density in the wire. The magnitude of the charge and its sign are to a large extent determined by the exchange interaction of the electrons in the wire. Using a Hartree-Fock approach, we develop a model of a quantum wire which includes the reservoirs. This model allows us to find the self-consistent distribution of the electron density…
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