6533b822fe1ef96bd127ce28
RESEARCH PRODUCT
Faster chiral versus collinear magnetic order recovery after optical excitation revealed by femtosecond XUV scattering
Nico KerberDmitriy KsenzovFrank FreimuthFlavio CapotondiEmanuele PedersoliIgnacio Lopez-quintasBoris SengJoel CramerKai LitziusDaniel LacourHartmut ZabelYuriy MokrousovMathias KläuiChristian Guttsubject
Condensed Matter - Materials ScienceHigh Energy Physics::LatticeScienceQMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciencesPhysics::OpticsGeneral Physics and AstronomyGeneral ChemistryArticleGeneral Biochemistry Genetics and Molecular BiologyMagnetic properties and materialsPhysics::Atomic and Molecular ClustersFerromagnetismddc:500Author Correctiondescription
While chiral spin structures stabilized by Dzyaloshinskii-Moriya interaction (DMI) are candidates as novel information carriers, their dynamics on the fs-ps timescale is little known. Since with the bulk Heisenberg exchange and the interfacial DMI two distinct exchange mechanisms are at play, the ultra-fast dynamics of the chiral order needs to be ascertained and compared to the dynamics of the conventional collinear order. Using an XUV free-electron laser we determine the fs-ps temporal evolution of the chiral order in domain walls in a magnetic thin film sample by an IR pump - X-ray magnetic scattering probe experiment. Upon demagnetisation we observe that the dichroic (CL-CR) signal connected with the chiral order correlator $m_z m_x$ in the domain walls recovers significantly faster than the (CL+CR) sum signal representing the average collinear domain magnetisation $m_z^2 + m_x^2$. We explore possible explanations based on spin structure dynamics and reduced transversal magnetisation fluctuations inside the domain walls and find that the latter can explain the experimental data leading to different dynamics for collinear magnetic order and chiral magnetic order.
year | journal | country | edition | language |
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2020-12-01 |