Low-temperature conductivity of quasi-one-dimensional conductors: Luttinger liquid stabilized by impurities
arXiv:cond-mat/0512446 · doi:10.1103/PhysRevB.72.125118
Abstract
A new non-Fermi-liquid state of quasi-one-dimensional conductors is suggested in which electronic system exists in a form of collection of bounded Luttinger liquids stabilized by impurities. This state is shown to be stable towards interchain electron hopping at low temperatures. Electronic spectrum of the system contains zero modes and collective excitations of the bounded Luttinger liquids in the segments between impurities. Zero modes give rise to randomly distributed localized electronic levels, and long-range interaction generates the Coulomb gap in the density of states at the Fermi energy. Mechanism of conductivity at low temperatures is phonon-assisted hopping via zero-mode states. At higher voltages the excitations of Luttinger liquid are involved in electron transport, and conductivity obeys power-law dependence on voltage. The results provide a qualitative explanation for recent experimental data for NbSe3 and TaS3 crystals.
12 pages, 1 figure
References in corpus (4)
Cited by in corpus (10)
- Electronic crystals: an experimental overview
- Electron transport in disordered Luttinger liquid
- Coulomb blockade and transport in a chain of one-dimensional quantum dots
- Long-range order in quasi-one-dimensional conductors
- Is the Luttinger liquid a new state of matter?
- Strongly disordered Hubbard model in one dimension: spin and orbital infinite randomness and Griffiths phases
- Equilibrium Low Temperature Heat Capacity of the Spin Density Wave compound (TMTTF)2 Br: effect of a Magnetic Field
- Effect of impurity pinning on conduction and specific heat in the Luttinger liquid
- Impurity induced coherent current oscillations in one-dimensional conductors
- Density-density Correlation Function of Strongly Inhomogeneous Luttinger Liquids