Physical Review Research (Mar 2023)

Enhancement of spin-charge conversion efficiency for Co_{3}Sn_{2}S_{2} across transition from paramagnetic to ferromagnetic phase

  • Takeshi Seki,
  • Yong-Chang Lau,
  • Junya Ikeda,
  • Kohei Fujiwara,
  • Akihiro Ozawa,
  • Satoshi Iihama,
  • Kentaro Nomura,
  • Atsushi Tsukazaki

DOI
https://doi.org/10.1103/PhysRevResearch.5.013222
Journal volume & issue
Vol. 5, no. 1
p. 013222

Abstract

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Co_{3}Sn_{2}S_{2} (CSS) is one of the shandite compounds and becomes a magnetic Weyl semimetal candidate below the ferromagnetic phase transition temperature (T_{C}). In this paper, we investigate the temperature (T) dependence of conversion between charge current and spin current for the CSS thin film by measuring the spin-torque ferromagnetic resonance (ST-FMR) for the trilayer consisting of CSS/Cu/CoFeB. Above T_{C}∼170 K, the CSS/Cu/CoFeB trilayer exhibits the clear ST-FMR signal coming from the spin Hall effect in the paramagnetic CSS and the anisotropic magnetoresistance (AMR) of CoFeB. Below T_{C}, on the other hand, it is found that the ST-FMR signal involves the dc voltages (V_{dc}) not only through the AMR but also through the giant magnetoresistance (GMR). Thus, the resistance changes coming from both AMR and GMR should be taken into account to correctly understand the characteristic field angular dependence of V_{dc}. The spin Hall torque generated from the ferromagnetic CSS, which possesses the same symmetry as that for spin Hall effect, dominantly acts on the magnetization of CoFeB. A definite increase in the spin-charge conversion efficiency is observed at T<T_{C}, indicating that the phase transition to the ferromagnetic CSS promotes the highly efficient spin-charge conversion. In addition, our theoretical calculation shows the increase in spin Hall conductivity with the emergence of magnetic moment at T<T_{C}, which is consistent with the experimental observation.