Power dissipation for systems with junctions of multiple quantum wires
arXiv:0907.5073 · doi:10.1103/PhysRevB.81.035324
Abstract
We study power dissipation for systems of multiple quantum wires meeting at a junction, in terms of a current splitting matrix (M) describing the junction. We present a unified framework for studying dissipation for wires with either interacting electrons (i.e., Tomonaga-Luttinger liquid wires with Fermi liquid leads) or non-interacting electrons. We show that for a given matrix M, the eigenvalues of M^T M characterize the dissipation, and the eigenvectors identify the combinations of bias voltages which need to be applied to the different wires in order to maximize the dissipation associated with the junction. We use our analysis to propose and study some microscopic models of a dissipative junction which employ the edge states of a quantum Hall liquid. These models realize some specific forms of the M-matrix whose entries depends on the tunneling amplitudes between the different edges.
9 pages, 4 figures; made several minor changes; this is the published version
References in corpus (9)
- Junctions of anyonic Luttinger wires
- Y-junction of superconducting Josephson chains
- Enhancement of tunneling density of states at a junction of three Luttinger liquid wires
- Frustration of decoherence in -shaped superconducting Josephson networks
- Duality between normal and superconducting junctions of multiple quantum wires
- Line junction in a quantum Hall system with two filling fractions
- Renormalization group study of transport through a superconducting junction of multiple one-dimensional quantum wires
- Spintronics with NSN Junction of one-dimensional quantum wires : A study of Pure Spin Current and Magnetoresistance
- Transport through constricted quantum Hall edge systems: beyond the quantum point contact
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- Model of resistances in systems of Tomonaga-Luttinger liquid wires
- Time resolved transport properties of a -junction of Tomonaga-Luttinger liquids
- Electron-electron interaction effects on transport through mesoscopic superconducting hybrid junctions
- Enhancement in tunneling density of states in Luttinger liquid -- role of non-local interaction
- Twisted bilayer graphene as a terahertz plasmonic crystal
- Tunneling density of states in Luttinger Liquid in proximity to a superconductor: Effect of non-local interaction
- Dissipation and quantum noise in chiral circuitry