English

Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal

Materials Science 2019-01-04 v1 Mesoscale and Nanoscale Physics

Abstract

In metallic ferromagnets, the Berry curvature of underlying quasiparticles can cause an electric voltage perpendicular to both magnetization and an applied temperature gradient, a phenomenon called the anomalous Nernst effect (ANE). Here, we report the observation of a giant ANE in the full-Heusler ferromagnet Co2_2MnGa, reaching Syx6S_{yx}\sim -6 μ\muV/K at room TT, one order of magnitude larger than the maximum value reported for a magnetic conductor. With increasing temperature, the transverse thermoelectric conductivity or Peltier coefficient αyx\alpha_{yx} shows a crossover between TT-linear and Tlog(T)-T \log(T) behaviors, indicating the violation of Mott formula at high temperatures. Our numerical and analytical calculations indicate that the proximity to a quantum Lifshitz transition between type-I and type-II magnetic Weyl fermions is responsible for the observed crossover properties and an enhanced αyx\alpha_{yx}. The TT dependence of αyx\alpha_{yx} in experiments and numerical calculations can be understood in terms of a quantum critical scaling function predicted by the low energy effective theory over more than a decade of temperatures. Moreover, the observation of chiral anomaly or an unsaturated positive longitudinal magnetoconductance also provide evidence for the existence of Weyl fermions in Co2_2MnGa.

Keywords

Cite

@article{arxiv.1807.04761,
  title  = {Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal},
  author = {Akito Sakai and Yo Pierre Mizuta and Agustinus Agung Nugroho and Rombang Sihombing and Takashi Koretsune and Michi-To Suzuki and Nayuta Takemori and Rieko Ishii and Daisuke Nishio-Hamane and Ryotaro Arita and Pallab Goswami and Satoru Nakatsuji},
  journal= {arXiv preprint arXiv:1807.04761},
  year   = {2019}
}

Comments

43 pages, 11 figures, 1 Table, To appear in Nature Physics