English

Spin Pumping and Inverse Spin Hall Effect in Germanium

Materials Science 2015-06-15 v1 Mesoscale and Nanoscale Physics

Abstract

We have measured the inverse spin Hall effect (ISHE) in \textit{n}-Ge at room temperature. The spin current in germanium was generated by spin pumping from a CoFeB/MgO magnetic tunnel junction in order to prevent the impedance mismatch issue. A clear electromotive force was measured in Ge at the ferromagnetic resonance of CoFeB. The same study was then carried out on several test samples, in particular we have investigated the influence of the MgO tunnel barrier and sample annealing on the ISHE signal. First, the reference CoFeB/MgO bilayer grown on SiO2_{2} exhibits a clear electromotive force due to anisotropic magnetoresistance and anomalous Hall effect which is dominated by an asymmetric contribution with respect to the resonance field. We also found that the MgO tunnel barrier is essential to observe ISHE in Ge and that sample annealing systematically lead to an increase of the signal. We propose a theoretical model based on the presence of localized states at the interface between the MgO tunnel barrier and Ge to account for these observations. Finally, all of our results are fully consistent with the observation of ISHE in heavily doped nn-Ge and we could estimate the spin Hall angle at room temperature to be \approx0.001.

Keywords

Cite

@article{arxiv.1305.2602,
  title  = {Spin Pumping and Inverse Spin Hall Effect in Germanium},
  author = {J. -C. Rojas-Sánchez and M. Cubukcu and A. Jain and C. Vergnaud and C. Portemont and C. Ducruet and A. Barski and A. Marty and L. Vila and J. -P. Attané and E. Augendre and G. Desfonds and S. Gambarelli and H. Jaffrès and J. -M. George and M. Jamet},
  journal= {arXiv preprint arXiv:1305.2602},
  year   = {2015}
}

Comments

34 pages, 14 figures

R2 v1 2026-06-22T00:15:06.656Z