Interpreting Angle Dependent Magnetoresistance in Layered Materials: Application to Cuprates
Abstract
The evolution of the low temperature electronic structure of the cuprate metals from the overdoped to the underdoped side has recently been addressed through Angle-Dependant Magneto-Resistance (ADMR) experiments in LaNdSrCuO. The results show a striking difference between hole dopings and which lie on either side of a putative quantum critical point at intermediate . Motivated by this, we here study the theory of ADMR in correlated layered materials, paying special attention to the role of angle dependent quasiparticle weights . Such a is expected to characterize a number of popular models of the cuprate materials, particularly when underdoped. Further, in the limit of weak interlayer hopping the quasiparticle weight will affect the -axis transport measured in ADMR experiments. We show that proper inclusion of the quasiparticle weight does not support an interpretation of the data in terms of a spin density wave ordered state, in agreement with the lack of direct evidence for such order. We show that a simple model of Fermi surface reconfiguring across a van Hove point captures many of the striking differences seen between and . We comment on why such a model may be appropriate for interpreting the ADMR data, despite having a large Fermi surface at , seemingly in contradiction with other evidence for a small Fermi surafce at that doping level.
Keywords
Cite
@article{arxiv.2111.08740,
title = {Interpreting Angle Dependent Magnetoresistance in Layered Materials: Application to Cuprates},
author = {Seth Musser and Debanjan Chowdhury and Patrick A. Lee and T. Senthil},
journal= {arXiv preprint arXiv:2111.08740},
year = {2022}
}
Comments
14 pages, 9 figures