English

Non-local magnon-based transport in yttrium iron garnet/platinum heterostructures at high temperatures

Mesoscale and Nanoscale Physics 2021-06-30 v1

Abstract

The spin Hall effect in a heavy metal thin film allows to probe the magnetic properties of an adjacent magnetic insulator via magnetotransport measurements. Here, we investigate the magnetoresistive response of yttrium iron garnet/platinum heterostructures from room temperature to beyond the Curie temperature TC,YIG560KT_\mathrm{C, YIG} \approx 560\,\mathrm{K} of the ferrimagnetic insulator. We find that the amplitude of the (local) spin Hall magnetoresistance decreases monotonically from 300K300\,\mathrm{K} towards TCT_\mathrm{C}, mimicking the evolution of the saturation magnetization of yttrium iron garnet. Interestingly, the spin Hall magnetoresistance vanishes around 500K500\,\mathrm{K}, well below TCT_\mathrm{C}, which we attribute to the formation of a parasitic interface layer by interdiffusion. Around room temperature the non-local magnon-mediated magnetoresistance exhibits a power law scaling TαT^{\alpha} with α=3/2\alpha = 3/2, as already reported. The exponent decreases gradually to α1/2\alpha \sim 1/2 at around 420K420\,\mathrm{K}, before the non-local magnetoresistance vanishes rapidly at a similar temperature as the spin Hall magnetoresistance. We attribute the reduced α\alpha at high temperatures to the increasing thermal magnon population which leads to enhanced scattering of the non-equilibrium magnon population and a reduced magnon diffusion length. Finally, we find a magnetic field independent offset voltage in the non-local signal for T>470KT > 470\,\mathrm{K} which we associate with electronic leakage currents through the normally insulating yttrium iron garnet film. Indeed, this non-local offset voltage is thermally activated with an energy close to the band gap.

Keywords

Cite

@article{arxiv.2011.08589,
  title  = {Non-local magnon-based transport in yttrium iron garnet/platinum heterostructures at high temperatures},
  author = {Richard Schlitz and Sergey Granovsky and Sebastian T. B. Goennenwein},
  journal= {arXiv preprint arXiv:2011.08589},
  year   = {2021}
}

Comments

7 pages, 4 figures