English

Spin absorption by in situ deposited nanoscale magnets on graphene spin valves

Mesoscale and Nanoscale Physics 2018-10-24 v1

Abstract

An in situ measurement of spin transport in a graphene nonlocal spin valve is used to quantify the spin current absorbed by a small (250 nm ×\times 750 nm) metallic island. The experiment allows for successive depositions of either Fe or Cu without breaking vacuum, so that the thickness of the island is the only parameter that is varied. Furthermore, by measuring the effect of the island using separate contacts for injection and detection, we isolate the effect of spin absorption from any change in the spin injection and detection mechanisms. As inferred from the thickness dependence, the effective spin current je=2ejsj_e = \frac{2e}{\hbar} j_s absorbed by Fe is as large as 10810^8 A/m2^2. The maximum value of jej_e is limited by the resistance-area product of the graphene/Fe interface, which is as small as 3 Ωμ\Omega\mum2^2. The spin current absorbed by the same thickness of Cu is smaller than for Fe, as expected given the longer spin diffusion length and larger spin resistance of Cu compared to Fe. These results allow for a quantitative assessment of the prospects for achieving spin transfer torque switching of a nanomagnet using a graphene-based nonlocal spin valve.

Keywords

Cite

@article{arxiv.1804.02103,
  title  = {Spin absorption by in situ deposited nanoscale magnets on graphene spin valves},
  author = {Walid Amamou and Gordon Stecklein and Steven J. Koester and Paul A. Crowell and Roland K. Kawakami},
  journal= {arXiv preprint arXiv:1804.02103},
  year   = {2018}
}

Comments

20 pages, includes supplemental information