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Electric-field-driven domain wall dynamics in perpendicularly magnetized multilayers
Author(s) -
Diego López González,
Yasuhiro Shirahata,
Ben Van de Wiele,
Kévin J. A. Franke,
Arianna Casiraghi,
Tomoyasu Taniyama,
Sebastiaan van Dijken
Publication year - 2017
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4979267
Subject(s) - condensed matter physics , electric field , domain wall (magnetism) , magnetic domain , ferroelectricity , materials science , magnetic field , perpendicular , magnetization , polarization (electrochemistry) , magnetic anisotropy , kerr effect , magnetic force microscope , physics , dielectric , chemistry , geometry , optoelectronics , nonlinear system , quantum mechanics , mathematics
We report on reversible electric-field-driven magnetic domain wall motion in a Cu/Ni multilayer on a ferroelectric BaTiO3 substrate. In our heterostructure, strain-coupling to ferroelastic domains with in-plane and perpendicular polarization in the BaTiO3 substrate causes the formation of domains with perpendicular and in-plane magnetic anisotropy, respectively, in the Cu/Ni multilayer. Walls that separate magnetic domains are elastically pinned onto ferroelectric domain walls. Using magneto-optical Kerr effect microscopy, we demonstrate that out-of-plane electric field pulses across the BaTiO3 substrate move the magnetic and ferroelectric domain walls in unison. Our experiments indicate an exponential increase of domainwall velocity with electric field strength and opposite domain wall motion for positive and negative field pulses. The application of a magnetic field does not affect the velocity of magnetic domain walls, but independently tailors their internal spin structure, causing a change in domain walldynamics at high velocities. (C) 2017 Author(s).Peer reviewe

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