English

Electronic Cooling in Weyl and Dirac Semimetals

Strongly Correlated Electrons 2015-10-06 v2 Materials Science

Abstract

Energy transfer from electrons to phonons is an important consideration in any Weyl or Dirac semimetal based application. In this work, we analytically calculate the cooling power of acoustic phonons, i.e. the energy relaxation rate of electrons which are interacting with acoustic phonons, for Weyl and Dirac semimetals in a variety of different situations. For cold Weyl or Dirac semimetals with the Fermi energy at the nodal points, we find the electronic temperature, TeT_e, decays in time as a power law. In the heavily doped regime, TeT_e decays linearly in time far away from equilibrium. In a heavily doped system with short-range disorder we predict the cooling power of acoustic phonons is drastically increased because of an enhanced energy transfer between electrons and phonons. When an external magnetic field is applied to an undoped system, the cooling power is linear in magnetic field strength and TeT_e has square root decay in time, independent of magnetic field strength over a range of values.

Keywords

Cite

@article{arxiv.1502.07700,
  title  = {Electronic Cooling in Weyl and Dirac Semimetals},
  author = {Rex Lundgren and Gregory A. Fiete},
  journal= {arXiv preprint arXiv:1502.07700},
  year   = {2015}
}

Comments

12 pages

R2 v1 2026-06-22T08:39:10.313Z