Chirality of Bloch domain walls in exchange biased CoO/Co bilayer seen by waveguide-enhanced neutron spin-flip scattering
Închide
Articolul precedent
Articolul urmator
287 0
SM ISO690:2012
KHAYDUKOV, Yu N., LENK, D., ZDRAVKOV, Vladimir, MORARI, Roman, KELLER, Thomas, SIDORENKO, Anatolie, TAGIROV, Lenar, TIDECKS, Reinhard, HÖRN, Siegfried, KEIMER, B.. Chirality of Bloch domain walls in exchange biased CoO/Co bilayer seen by waveguide-enhanced neutron spin-flip scattering. In: The 12th international conference on intrinsic Josephson effect and horizons of superconducting spintronics, 22-25 octombrie 2021, Chişinău. Chişinău: 2021, p. 46. ISBN 978-9975-47-215-9.
EXPORT metadate:
Google Scholar
Crossref
CERIF

DataCite
Dublin Core
The 12th international conference on intrinsic Josephson effect and horizons of superconducting spintronics 2021
Conferința "The 12th international conference on intrinsic Josephson effect and horizons of superconducting spintronics"
Chişinău, Moldova, 22-25 octombrie 2021

Chirality of Bloch domain walls in exchange biased CoO/Co bilayer seen by waveguide-enhanced neutron spin-flip scattering


Pag. 46-46

Khaydukov Yu N.1, Lenk D.2, Zdravkov Vladimir2, Morari Roman2, Keller Thomas1, Sidorenko Anatolie3, Tagirov Lenar4, Tidecks Reinhard3, Hörn Siegfried3, Keimer B.1
 
1 Max Planck Institute for Solid State Research,
2 Institut für Physik, Universität Augsburg,
3 University of Augsburg,
4 Kazan E.K. Zavoisky Physical-Technical Institute, Kazan
 
 
Disponibil în IBN: 18 martie 2022


Rezumat

Magnetic state of exchanged biased CoO(20nm)/Co(dF) bilayer (dF=5-20nm) was studied by means of polarized neutron reflectometry. By spacing of CoO/Co bilayer and Al2O3 substrate with Nb(20nm) layer we created waveguide structure which allowed us to significantly enhance intensity of spin-flip (SF) scattering in the position of optical resonances. For the trained sample with thinnest Co(5nm) we detected strong SF scattering at the resonance position (up to 30\% of incoming intensity) speaking about high non-collinearity of the system. As dF increases, the intensity of SF scattering linearly decreases. At the same time we observed asymmetry of up-down and down-up scattering channels at the resonance positions. We attribute this asymmetry to the Zeeman splitting of neutrons energies with different initial polarization taking place in high external field. Analysis, however, shows that the applied in the PNR experiment external field is not enough to quantitatively explain the observed asymmetry for the samples with dF> 5nm and we have to postulate presence of additional magnetic field produced by sample. We attribute this additional field to the stray field produced by chiral Bloch domain walls. The chirality of the domain walls can be explained by Dzyaloshinskii-Moriya interaction arising at the CoO/Co interface. Our results can be useful for designing of spintronic devices using exchange bias effect.