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dc.contributor.authorLei, N.en
dc.contributor.authorDevolder, T.en
dc.contributor.authorAgnus, G.en
dc.contributor.authorAubert, P.en
dc.contributor.authorDaniel, L.en
dc.contributor.authorKim, J. -Ven
dc.contributor.authorZhao, W.en
dc.contributor.authorTrypiniotis, Theodossisen
dc.contributor.authorCowburn, R. P.en
dc.contributor.authorChappert, C.en
dc.contributor.authorRavelosona, D.en
dc.contributor.authorLecoeur, P.en
dc.creatorLei, N.en
dc.creatorDevolder, T.en
dc.creatorAgnus, G.en
dc.creatorAubert, P.en
dc.creatorDaniel, L.en
dc.creatorKim, J. -Ven
dc.creatorZhao, W.en
dc.creatorTrypiniotis, Theodossisen
dc.creatorCowburn, R. P.en
dc.creatorChappert, C.en
dc.creatorRavelosona, D.en
dc.creatorLecoeur, P.en
dc.date.accessioned2019-12-02T15:31:41Z
dc.date.available2019-12-02T15:31:41Z
dc.date.issued2013
dc.identifier.issn2041-1723
dc.identifier.urihttp://gnosis.library.ucy.ac.cy/handle/7/58817
dc.description.abstractThe control of magnetic order in nanoscale devices underpins many proposals for integrating spintronics concepts into conventional electronics. A key challenge lies in finding an energy-efficient means of control, as power dissipation remains an important factor limiting future miniaturization of integrated circuits. One promising approach involves magnetoelectric coupling in magnetostrictive/piezoelectric systems, where induced strains can bear directly on the magnetic anisotropy. While such processes have been demonstrated in several multiferroic heterostructures, the incorporation of such complex materials into practical geometries has been lacking. Here we demonstrate the possibility of generating sizeable anisotropy changes, through induced strains driven by applied electric fields, in hybrid piezoelectric/spin-valve nanowires. By combining magneto-optical Kerr effect and magnetoresistance measurements, we show that domain wall propagation fields can be doubled under locally applied strains. These results highlight the prospect of constructing low-power domain wall gates for magnetic logic devices. © 2013 Macmillan Publishers Limited. All rights reserved.en
dc.sourceNature Communicationsen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-84878908224&doi=10.1038%2fncomms2386&partnerID=40&md5=671a5eade205cb675d068151efa084a6
dc.subjectarticleen
dc.subjectanisotropyen
dc.subjectnanowireen
dc.subjectgeometryen
dc.subjecthybriden
dc.subjectmagnetic fielden
dc.subjectpiezoelectricityen
dc.subjectelectric fielden
dc.subjectelectronicsen
dc.subjectelectronic equipmenten
dc.subjectenergy efficiencyen
dc.subjectintegrated circuiten
dc.subjectmagnetic anisotropyen
dc.titleStrain-controlled magnetic domain wall propagation in hybrid piezoelectric/ferromagnetic structuresen
dc.typeinfo:eu-repo/semantics/article
dc.identifier.doi10.1038/ncomms2386
dc.description.volume4
dc.author.facultyΣχολή Θετικών και Εφαρμοσμένων Επιστημών / Faculty of Pure and Applied Sciences
dc.author.departmentΤμήμα Φυσικής / Department of Physics
dc.type.uhtypeArticleen
dc.description.notes<p>Cited By :110</p>en
dc.source.abbreviationNat.Commun.en


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