Conductance of a quantum wire: Landauer's approach versus Kubo formula
arXiv:cond-mat/9701027 · doi:10.1103/PhysRevB.55.R7331
Abstract
The transport in a pure one-dimensional quantum wire is investigated for any range of interactions. First, the wire is connected to measuring leads. The transmission of an incident electron is found to be perfect, and the conductance is not renormalized by the interactions. Either Landauer's approach or Kubo formula can be used as long as the reservoirs impose the boundary conditions. Second, the Kubo formula as a response to the local field is reconsidered in a generic Luttinger liquid: the ``intrinsic'' conductance thus obtained is determined by the same combination of interaction parameters as that which renormalizes the current.
5 revtex pages; an improved and definite version
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