Emergent Strange Nodal Metallicity from Orbital-Selective Mott Physics
Abstract
While a specific kind of strange metal is increasingly found to be the "normal" states in a wide variety of unconventional superconductors, its microscopic origin is presently a hotly debated enigma. Using dynamical mean-field theory (DMFT) based on hybridization expansion of continuous-time quantum Monte-Carlo (CTQMC) solver for an extended two-band Hubbard model (2BHM), we investigate the conditions underlying the emergence of such a metal. Specifically, we tie strange metallicity to an orbital-selective Mottness in 2BHM or momentum-selective Mott phase (OSMP) in 2D Hubbard models inspired by a cluster-to-orbital mapping. We find disparate spin and charge responses, fractional power-law behavior and -scaling in the charge and spin fluctuation responses, and very good accord with optical conductivity and nuclear magnetic relaxation rates in the slightly underdoped normal states of cuprates and Fe-arsenides. We analyze the local problem using bosonization to show that such anomalous responses arise from a lattice orthogonality catastrophe specifically in the OSMP. Our work establishes the intimate link between strange metallicity and selective Mottness in quantum matter.
Cite
@article{arxiv.1805.02288,
title = {Emergent Strange Nodal Metallicity from Orbital-Selective Mott Physics},
author = {Swagata Acharya and Mukul S. Laad and Nagamalleswararao Dasari and N. S. Vidhyadhiraja and Mark Jarrell and A Taraphder},
journal= {arXiv preprint arXiv:1805.02288},
year = {2018}
}
Comments
9 pages, 7 figures and supplemental material