Non-Fermi-liquid d-wave metal phase of strongly interacting electrons
Abstract
Developing a theoretical framework for conducting electronic fluids qualitatively distinct from those described by Landau's Fermi-liquid theory is of central importance to many outstanding problems in condensed matter physics. One such problem is that, above the transition temperature and near optimal doping, high-transition-temperature copper-oxide superconductors exhibit `strange metal' behaviour that is inconsistent with being a traditional Landau Fermi liquid. Indeed, a microscopic theory of a strange-metal quantum phase could shed new light on the interesting low-temperature behaviour in the pseudogap regime and on the d-wave superconductor itself. Here we present a theory for a specific example of a strange metal---the 'd-wave metal'. Using variational wavefunctions, gauge theoretic arguments, and ultimately large-scale density matrix renormalization group calculations, we show that this remarkable quantum phase is the ground state of a reasonable microscopic Hamiltonian---the usual t-J model with electron kinetic energy and two-spin exchange supplemented with a frustrated electron `ring-exchange' term, which we here examine extensively on the square lattice two-leg ladder. These findings constitute an explicit theoretical example of a genuine non-Fermi-liquid metal existing as the ground state of a realistic model.
Keywords
Cite
@article{arxiv.1207.6608,
title = {Non-Fermi-liquid d-wave metal phase of strongly interacting electrons},
author = {Hong-Chen Jiang and Matthew S. Block and Ryan V. Mishmash and James R. Garrison and D. N. Sheng and Olexei I. Motrunich and Matthew P. A. Fisher},
journal= {arXiv preprint arXiv:1207.6608},
year = {2013}
}
Comments
22 pages, 12 figures: 6 pages, 7 figures of main text + 16 pages, 5 figures of Supplementary Information; this is approximately the version published in Nature, minus various subedits in the main text