Article ID Journal Published Year Pages File Type
1859645 Physics Letters A 2015 12 Pages PDF
Abstract

•The gapless nodal fermions exhibit non-Fermi liquid behaviors at the nematic QCP.•The strength of random chemical potential is marginal at the one-loop level.•The strength becomes marginally relevant after including the two-loop corrections.•The diffusive metallic state is induced by the marginally relevant disorder.•The behaviors of some physical observables are presented at the nematic QCP.

The gapless nodal fermions exhibit non-Fermi liquid behaviors at the nematic quantum critical point that is supposed to exist in some d-wave cuprate superconductors. This non-Fermi liquid state may be turned into a disorder-dominated diffusive metal if the fermions also couple to a disordered potential that generates a relevant perturbation in the sense of renormalization group theory. It is therefore necessary to examine whether a specific disorder is relevant or not. We study the interplay between critical nematic fluctuation and random chemical potential by performing renormalization group analysis. The parameter that characterizes the strength of random chemical potential is marginal at the one-loop level, but becomes marginally relevant after including the two-loop corrections. Thus even weak random chemical potential leads to diffusive motion of nodal fermions and the significantly critical behaviors of physical implications, since the strength flows eventually to large values at low energies.

Related Topics
Physical Sciences and Engineering Physics and Astronomy Physics and Astronomy (General)
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