Seebeck coefficient in a cuprate superconductor: particle-hole asymmetry in the strange metal phase and Fermi surface transformation in the pseudogap phase
A. Gourgout, G. Grissonnanche, F. Lalibert\'e, A. Ataei, L. Chen, S., Verret, J.-S. Zhou, J. Mravlje, A. Georges, N. Doiron-Leyraud, L. Taillefer

TL;DR
This study measures the Seebeck effect in a cuprate superconductor to investigate particle-hole asymmetry and Fermi surface changes across the pseudogap critical doping, revealing a Fermi surface transformation and pseudogap phase signatures.
Contribution
It provides direct experimental evidence of Fermi surface transformation and particle-hole asymmetry in cuprates across the pseudogap critical doping using Seebeck effect measurements.
Findings
Positive Seebeck coefficient above pseudogap critical doping contradicts band structure expectations.
Negative out-of-plane Seebeck coefficient below pseudogap critical doping indicates Fermi surface change.
Seebeck measurements reveal a transformation of the electronic structure at the pseudogap transition.
Abstract
We report measurements of the Seebeck effect in both the plane () and along the axis () of the cuprate superconductor LaNdSrCuO (Nd-LSCO), performed in magnetic fields large enough to suppress superconductivity down to low temperature. We use the Seebeck coefficient as a probe of the particle-hole asymmetry of the electronic structure across the pseudogap critical doping . Outside the pseudogap phase, at , we observe a positive and essentially isotropic Seebeck coefficient as . That at is at odds with expectations given the electronic band structure of Nd-LSCO above and its known electron-like Fermi surface. We can reconcile this observation by invoking an energy-dependent scattering rate with a particle-hole asymmetry, possibly rooted in the…
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