English

Polar Kerr effect from chiral-nematic charge order

Strongly Correlated Electrons 2014-11-25 v2

Abstract

We analyze the polar Kerr effect in an itinerant electron system on a square lattice in the presence of a composite charge order proposed for the pseudogap state in underdoped cuprates. This composite charge order preserves discrete translational symmetries, and is "chiral-nematic" in the sense that it breaks time-reversal symmetry, mirror symmetries in xx and yy directions, and C4C_4 lattice rotation symmetry. The Kerr angle θK\theta_K in C4C_4-symmetric system is proportional to the antisymmetric component of the anomalous Hall conductivity σxyσyx\sigma_{xy}-\sigma_{yx}. We show that this result holds when C4C_4 symmetry is broken. We show that in order for σxy\sigma_{xy} and σyx\sigma_{yx} to be non-zero the mirror symmetries in xx and yy directions have to be broken, and that for σxyσyx\sigma_{xy}-\sigma_{yx} to be non-zero time-reversal symmetry has to be broken. The chiral-nematic charge order satisfies all these conditions, such that a non-zero signal in a polar Kerr effect experiment is symmetry allowed. We further show that to get a non-zero θK\theta_K in a one-band spin-fluctuation scenario, in the absence of disorder, one has to extend the spin-mediated interaction to momenta away from (π,π)(\pi,\pi) and has to include particle-hole asymmetry. Alternatively, in the presence of disorder one can get a non-zero θK\theta_K from impurity scattering: either due to skew scattering (with non-Gaussian disorder) or due to particle-hole asymmetry in case of Gaussian disorder. The impurity analysis in our case is similar to that in earlier works on Kerr effect in px+ipyp_x+ip_y superconductor, however in our case the magnitude of θK\theta_K is enhanced by the flattening of the Fermi surface in the "hot" regions which mostly contribute to charge order.

Keywords

Cite

@article{arxiv.1409.5441,
  title  = {Polar Kerr effect from chiral-nematic charge order},
  author = {Yuxuan Wang and Andrey V. Chubukov and Rahul Nandkishore},
  journal= {arXiv preprint arXiv:1409.5441},
  year   = {2014}
}

Comments

16 pages, 6 figures, replaced with published version

R2 v1 2026-06-22T06:00:10.723Z