Non-Fermi liquid regime of a doped Mott insulator
Abstract
We study the doping of a Mott insulator in the presence of quenched frustrating disorder in the magnetic exchange. A low doping regime is found, in which the quasiparticle coherent scale is low : with (the ratio of typical exchange to hopping). In the ``quantum critical regime'' , several physical quantities display Marginal Fermi Liquid behaviour : NMR relaxation time , resistivity , optical lifetime and response functions obey scaling, e.g. . In contrast, single-electron properties display stronger deviations from Fermi liquid theory in this regime with a dependence of the inverse single-particle lifetime and a decay of the photoemission intensity. On the basis of this model and of various experimental evidence, it is argued that the proximity of a quantum critical point separating a glassy Mott-Anderson insulator from a metallic ground-state is an important ingredient in the physics of the normal state of cuprate superconductors (particularly the Zn-doped materials). In this picture the corresponding quantum critical regime is a ``slushy'' state of spins and holes with slow spin and charge dynamics responsible for the anomalous properties of the normal state.
Keywords
Cite
@article{arxiv.cond-mat/9806119,
title = {Non-Fermi liquid regime of a doped Mott insulator},
author = {Olivier Parcollet and Antoine Georges},
journal= {arXiv preprint arXiv:cond-mat/9806119},
year = {2016}
}
Comments
40 pages, RevTeX, including 13 figures in EPS. v2 : minor changes, some references added