| Literature DB >> 25906195 |
Hyunmin Sohn, Mark E Nowakowski1, Cheng-yen Liang, Joshua L Hockel, Kyle Wetzlar, Scott Keller, Brenda M McLellan2, Matthew A Marcus3, Andrew Doran3, Anthony Young3, Mathias Kläui4, Gregory P Carman, Jeffrey Bokor1, Robert N Candler5.
Abstract
In this work, we experimentally demonstrate deterministic electrically driven, strain-mediated domain wall (DW) rotation in ferromagnetic Ni rings fabricated on piezoelectric [Pb(Mg1/3Nb2/3)O3]0.66-[PbTiO3]0.34 (PMN-PT) substrates. While simultaneously imaging the Ni rings with X-ray magnetic circular dichroism photoemission electron microscopy, an electric field is applied across the PMN-PT substrate that induces strain in the ring structures, driving DW rotation around the ring toward the dominant PMN-PT strain axis by the inverse magnetostriction effect. The DW rotation we observe is analytically predicted using a fully coupled micromagnetic/elastodynamic multiphysics simulation, which verifies that the experimental behavior is caused by the electrically generated strain in this multiferroic system. Finally, this DW rotation is used to capture and manipulate micrometer-scale magnetic beads in a fluidic environment to demonstrate a proof-of-concept energy-efficient pathway for multiferroic-based lab-on-a-chip applications.Keywords: electrically driven magnetic domain wall motion; energy-efficient magnetic technology; lab-on-a-chip; micromagnetic/elastodynamic coupled model; multiferroics
Year: 2015 PMID: 25906195 DOI: 10.1021/nn5056332
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881