Disorder-driven metal-insulator transitions in deformable lattices
arXiv:1604.07816 · doi:10.1103/PhysRevLett.118.036602
Abstract
We show that in presence of a deformable lattice potential, the nature of the disorder-driven metal-insulator transition (MIT) is fundamentally changed with respect to the non-interacting (Anderson) scenario. For strong disorder, even a modest electron-phonon interaction is found to dramatically renormalize the random potential, opening a mobility gap at the Fermi energy. This process, which reflects disorder-enhanced polaron formation, is here given a microscopic basis by treating the lattice deformations and Anderson localization effects on the same footing. We identify an intermediate "bad insulator" transport regime which displays resistivity values exceeding the Mott-Ioffe-Regel limit and with a negative temperature coefficient, as often observed in strongly disordered metals. Our calculations reveal that this behavior originates from significant temperature-induced rearrangements of electronic states due to enhanced interaction effects close to the disorder-driven MIT.
5 pages, 4 figures, revised version accepted in Phys. Rev. Lett
References in corpus (9)
- Anderson Transitions
- Disorder-Driven Non-Fermi Liquid Behavior of Correlated Electrons
- Critical behavior at Mott-Anderson transition: a TMT-DMFT perspective
- A Typical Medium Dynamical Cluster Approximation for the Study of Anderson Localization in Three Dimensions
- Study of multiband disordered systems using the typical medium dynamical cluster approximation
- Formation and observation of a quasi-two-dimensional electron liquid in epitaxially stabilized SrLaTiO thin films
- Strong interplay between electron-phonon interaction and disorder in low doped systems
- Quantum criticality at the Anderson transition: a TMT perspective
- Enhancement of the effective disorder potential and the thermopower in NaCoO through the electron-phonon coupling
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