English

A quantitative description of Nernst effect in high-temperature superconductors

Superconductivity 2017-12-06 v1

Abstract

A quantitative vortex-fluid model for flux-flow resistivity ρ\rho and Nernst signal eNe_N in high-temperature superconductors (HTSC) is proposed. Two kinds of vortices, magnetic and thermal, are considered, and the damping viscosity η\eta is modeled by extending the Bardeen-Stephen model to include the contributions of flux pinning at low temperature and in weak magnetic fields, and vortex-vortex collisions in strong magnetic fields. Remarkably accurate descriptions for both Nernst signal of six samples and flux flow resistivity are achieved over a wide range of temperature TT and magnetic field BB. A discrepancy of three orders of magnitude between data and Anderson's model of Nernst signal is pointed out and revised using experimental values of η\eta from magnetoresistance. Furthermore, a two-step procedure is developed to reliably extract, from the Nernst signal, a set of physical parameters characterizing the vortex dynamics, which yields predictions of local superfluid density nsn_s, the Kosterlitz coefficient bb of thermal vortices, and upper critical field and temperature. Application of the model and systematic measurement of relevant physical quantities from Nernst signal in other HTSC samples are discussed.

Keywords

Cite

@article{arxiv.1701.01832,
  title  = {A quantitative description of Nernst effect in high-temperature superconductors},
  author = {Rong Li and Zhen-Su She},
  journal= {arXiv preprint arXiv:1701.01832},
  year   = {2017}
}

Comments

46 pages, 14 figures

R2 v1 2026-06-22T17:43:36.109Z