Combined effects of pairing fluctuations and a pseudogap in the cuprate Hall coefficient
Rufus Boyack, Xiaoyu Wang, Qijin Chen, K. Levin
DOI 10.1103/PhysRevB.99.134504 · Physical Review B
Active bibliographic source — not scientific approval
Bibliographic access preserves source history; it does not approve extracted materials or validate reported claims. Review warnings on each occurrence separately.
Abstract
The normal-state behavior of the temperature-dependent Hall coefficient in cuprate superconductors is investigated using linear-response theory. The Hall conductivity is of paramount importance in that its sign and magnitude directly reflect the sign of the charge carriers and the size of particle-hole asymmetry effects. Here we apply a strong-pairing fluctuation theory that incorporates pseudogap effects known to be important in cuprate transport. As a result, in the vicinity of the transition temperature our theoretical approach goes beyond the conventional superconducting fluctuation formalism. In this regime, pseudogap effects are evident in both the transverse and longitudinal conductivities and the bosonic response is explicitly gauge invariant. The presence of a gap in the excitation spectrum is also apparent at higher temperatures, where the gapped fermionic quasiparticles are the dominant contribution to the Hall coefficient. The observed nonmonotonic temperature dependence of the Hall coefficient therefore results from a delicate interplay between the fermionic quasiparticles and the bosonic fluctuations. An important feature of our work is that the sign of the Hall conductivity from the Cooper-pair fluctuations is the same as that of their fermionic constituents. Thus, we find no sign change in the Hall coefficient above the transition temperature. This prediction is corroborated by experiments, away from special charge ordering stoichiometries. The theoretical results presented in this paper provide crucial signatures that can be experimentally verified, enabling validation of the present theory.
Similar papers
Combined effects of pairing fluctuations and a pseudogap in the Cuprate Hall effect
similarity 0.93Rufus Boyack et al. · 2018 · arXiv:1812.05140
Source status unknown — claims are unverified
Theory of Electric Transport in the Pseudogap State of High-Tc Cuprates
similarity 0.91Youichi Yanase · 2001 · arXiv:cond-mat/0111021
Source status unknown — claims are unverified
Theory of Hall Effect and Electrical Transport in High-Tc Cuprates: Effects of Antiferromagnetic Spin Fluctuations
similarity 0.90Kazuki Kanki & Hiroshi Kontani · 1999 · arXiv:cond-mat/9905428
Source status unknown — claims are unverified
On the Hall Effect in the pseudogap phase of cuprates
similarity 0.90Lev P. Gor'kov & Gegory B. Teitel'baum · 2013 · arXiv:1309.0778
Source status unknown — claims are unverified
Evolution of spectral and transport quantities with doping in the SU(2) theory of cuprates
similarity 0.90Corentin Morice et al. · 2017 · arXiv:1704.06557
Source status unknown — claims are unverified
Theory on Superconducting Transition from Pseudogap State
similarity 0.89Youichi Yanase et al. · 2000 · arXiv:cond-mat/0010281
Source status unknown — claims are unverified