Phenomenological theories of the low-temperature pseudogap: Hall number, specific heat, and Seebeck coefficient

S. Verret, O. Simard, M. Charlebois, D. Sénéchal, A. M.S. Tremblay

Research output: Contribution to journalArticlepeer-review

Abstract

Since its experimental discovery, many phenomenological theories successfully reproduced the rapid rise of the Hall number nH, going from p at low doping to 1+p at the critical doping p∗ of the pseudogap in superconducting cuprates. Further comparison with experiments is now needed in order to narrow down candidates. In this paper, we consider three previously successful phenomenological theories in a unified formalism - an antiferromagnetic mean field (AF), a spiral incommensurate antiferromagnetic mean field (sAF), and the Yang-Rice-Zhang (YRZ) theory. We find a rapid rise in the specific heat and a rapid drop in the Seebeck coefficient for increasing doping across the transition in each of those models. The predicted rises and drops are locked, not to p∗, but to the doping where antinodal electron pockets, characteristic of each model, appear at the Fermi surface shortly before p∗. While such electron pockets are still to be found in experiments, we discuss how they could provide distinctive signatures for each model. We also show that the range of doping where those electron pockets would be found is strongly affected by the position of the van Hove singularity.

Original languageEnglish
Article number125139
JournalPhysical Review B
Volume96
Issue number12
DOIs
Publication statusPublished - 20 Sept 2017
Externally publishedYes

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