| Literature DB >> 35301298 |
Cyril Léveillé1, Erick Burgos-Parra1,2, Yanis Sassi2, Fernando Ajejas2, Valentin Chardonnet3, Emanuele Pedersoli4, Flavio Capotondi4, Giovanni De Ninno4,5, Francesco Maccherozzi6, Sarnjeet Dhesi6, David M Burn6, Gerrit van der Laan6, Oliver S Latcham7, Andrey V Shytov7, Volodymyr V Kruglyak7, Emmanuelle Jal3, Vincent Cros2, Jean-Yves Chauleau8, Nicolas Reyren2, Michel Viret8, Nicolas Jaouen9.
Abstract
Non-collinear spin textures in ferromagnetic ultrathin films are attracting a renewed interest fueled by possible fine engineering of several magnetic interactions, notably the interfacial Dzyaloshinskii-Moriya interaction. This allows for the stabilization of complex chiral spin textures such as chiral magnetic domain walls (DWs), spin spirals, and magnetic skyrmions among others. We report here on the behavior of chiral DWs at ultrashort timescale after optical pumping in perpendicularly magnetized asymmetric multilayers. The magnetization dynamics is probed using time-resolved circular dichroism in x-ray resonant magnetic scattering (CD-XRMS). We observe a picosecond transient reduction of the CD-XRMS, which is attributed to the spin current-induced coherent and incoherent torques within the continuously varying spin texture of the DWs. We argue that a specific demagnetization of the inner structure of the DW induces a flow of spins from the interior of the neighboring magnetic domains. We identify this time-varying change of the DW texture shortly after the laser pulse as a distortion of the homochiral Néel shape toward a transient mixed Bloch-Néel-Bloch texture along a direction transverse to the DW.Entities:
Year: 2022 PMID: 35301298 PMCID: PMC8931105 DOI: 10.1038/s41467-022-28899-0
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1CD-XRMS experiments at Co M edge.
a Experimental configuration with the incident beams of the IR pump and the x-ray probe. Inset: MFM phase map displaying labyrinthine domains after out-of-plane demagnetization, scale bar is 2 µm. b Magnetic diffraction pattern, (CL + CR). c Dichroic pattern (CL-CR), displaying the typical signature of clockwise Néel domain walls. The images in panels b, c have been geometrically corrected to account for the projection related to the photon incidence angle θ = 45°, and the scale corresponds to the sum of the counts (500 XFEL pulse of each polarization) for (CL + CR) (b) and (CL-CR) (c).
Fig. 2Evolution of the XRMS signal over the first 5 ps.
a Intensity of integrated diffraction ring (CL+CR) and dichroism (CL-CR) normalized at their values at negative time delays; b experimental asymmetry ratio (CL-CR)/(CL+CR) normalized by its value at t < 0 in grey circles, black dots (4.8 mJ/cm2 IR fluence) and dark cyan square (10 mJ/cm2 IR fluence). The simulations for different models discussed in the main text appear as colored lines (see Supplementary Materials S3 for details). c Full width at half maximum (FWHM) (red dots) and the position (blue circles) in reciprocal space of the magnetic dichroic peak as a function of time.
Fig. 3Magnetization texture modification by hot electrons.
a Schematic representation of the torque (black arrows) imposed by the “hot spins” flowing from the domains to the DWs resulting in transient mixed Bloch/Néel/Bloch contributions. b Transient DW shape. c Precession angle (red) and DW magnetization normalized by the one from the domain (blue) used in the simulations of the asymmetry ratio shown in Fig. 2b.