TY - JOUR
T1 - Non-local magnetoresistance in YIG/Pt nanostructures
AU - Goennenwein, Sebastian T.B.
AU - Schlitz, Richard
AU - Pernpeintner, Matthias
AU - Ganzhorn, Kathrin
AU - Althammer, Matthias
AU - Gross, Rudolf
AU - Huebl, Hans
N1 - Publisher Copyright:
© 2015 AIP Publishing LLC.
PY - 2015/10/26
Y1 - 2015/10/26
N2 - We study the local and non-local magnetoresistance of thin Pt strips deposited onto yttrium iron garnet. The local magnetoresistive response, inferred from the voltage drop measured along one given Pt strip upon current-biasing it, shows the characteristic magnetization orientation dependence of the spin Hall magnetoresistance. We simultaneously also record the non-local voltage appearing along a second, electrically isolated, Pt strip, separated from the current carrying one by a gap of a few 100 nm. The corresponding non-local magnetoresistance exhibits the symmetry expected for a magnon spin accumulation-driven process, confirming the results recently put forward by Cornelissen et al. ["Long-distance transport of magnon spin information in a magnetic insulator at room temperature," Nat. Phys. (published online 14 September 2015)]. Our magnetotransport data, taken at a series of different temperatures as a function of magnetic field orientation, rotating the externally applied field in three mutually orthogonal planes, show that the mechanisms behind the spin Hall and the non-local magnetoresistance are qualitatively different. In particular, the non-local magnetoresistance vanishes at liquid Helium temperatures, while the spin Hall magnetoresistance prevails.
AB - We study the local and non-local magnetoresistance of thin Pt strips deposited onto yttrium iron garnet. The local magnetoresistive response, inferred from the voltage drop measured along one given Pt strip upon current-biasing it, shows the characteristic magnetization orientation dependence of the spin Hall magnetoresistance. We simultaneously also record the non-local voltage appearing along a second, electrically isolated, Pt strip, separated from the current carrying one by a gap of a few 100 nm. The corresponding non-local magnetoresistance exhibits the symmetry expected for a magnon spin accumulation-driven process, confirming the results recently put forward by Cornelissen et al. ["Long-distance transport of magnon spin information in a magnetic insulator at room temperature," Nat. Phys. (published online 14 September 2015)]. Our magnetotransport data, taken at a series of different temperatures as a function of magnetic field orientation, rotating the externally applied field in three mutually orthogonal planes, show that the mechanisms behind the spin Hall and the non-local magnetoresistance are qualitatively different. In particular, the non-local magnetoresistance vanishes at liquid Helium temperatures, while the spin Hall magnetoresistance prevails.
UR - http://www.scopus.com/inward/record.url?scp=84946104938&partnerID=8YFLogxK
U2 - 10.1063/1.4935074
DO - 10.1063/1.4935074
M3 - Article
AN - SCOPUS:84946104938
SN - 0003-6951
VL - 107
JO - Applied Physics Letters
JF - Applied Physics Letters
IS - 17
M1 - 172405
ER -