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      Quantification of strain and charge co-mediated magnetoelectric coupling on ultra-thin Permalloy/PMN-PT interface

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          Abstract

          Strain and charge co-mediated magnetoelectric coupling are expected in ultra-thin ferromagnetic/ferroelectric multiferroic heterostructures, which could lead to significantly enhanced magnetoelectric coupling. It is however challenging to observe the combined strain charge mediated magnetoelectric coupling, and difficult in quantitatively distinguish these two magnetoelectric coupling mechanisms. We demonstrated in this work, the quantification of the coexistence of strain and surface charge mediated magnetoelectric coupling on ultra-thin Ni 0.79Fe 0.21/PMN-PT interface by using a Ni 0.79Fe 0.21/Cu/PMN-PT heterostructure with only strain-mediated magnetoelectric coupling as a control. The NiFe/PMN-PT heterostructure exhibited a high voltage induced effective magnetic field change of 375 Oe enhanced by the surface charge at the PMN-PT interface. Without the enhancement of the charge-mediated magnetoelectric effect by inserting a Cu layer at the PMN-PT interface, the electric field modification of effective magnetic field was 202 Oe. By distinguishing the magnetoelectric coupling mechanisms, a pure surface charge modification of magnetism shows a strong correlation to polarization of PMN-PT. A non-volatile effective magnetic field change of 104 Oe was observed at zero electric field originates from the different remnant polarization state of PMN-PT. The strain and charge co-mediated magnetoelectric coupling in ultra-thin magnetic/ferroelectric heterostructures could lead to power efficient and non-volatile magnetoelectric devices with enhanced magnetoelectric coupling.

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          Materials science. The renaissance of magnetoelectric multiferroics.

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            Surface Magnetoelectric Effect in Ferromagnetic Metal Films

            A surface magnetoelectric effect is revealed by density-functional calculations that are applied to ferromagnetic Fe(001), Ni(001) and Co(0001) films in the presence of external electric field. The effect originates from spin-dependent screening of the electric field which leads to notable changes in the surface magnetization and the surface magnetocrystalline anisotropy. These results are of considerable interest in the area of electrically-controlled magnetism and magnetoelectric phenomena.
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              Origin of the magnetoelectric coupling effect in Pb(Zr0.2Ti0.8)O3/La0.8Sr0.2MnO3 multiferroic heterostructures

              The electronic valence state of Mn in Pb(Zr0.2Ti0.8)O3/La0.8Sr0.2MnO3 multiferroic heterostructures is probed by near edge x-ray absorption spectroscopy as a function of the ferroelectric polarization. We observe a temperature independent shift in the absorption edge of Mn associated with a change in valency induced by charge carrier modulation in the La0.8Sr0.2MnO3, demonstrating the electronic origin of the magnetoelectric effect. Spectroscopic, magnetic, and electric characterization shows that the large magnetoelectric response originates from a modified interfacial spin configuration, opening a new pathway to the electronic control of spin in complex oxide materials.
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                Author and article information

                Journal
                Sci Rep
                Sci Rep
                Scientific Reports
                Nature Publishing Group
                2045-2322
                14 January 2014
                2014
                : 4
                : 3688
                Affiliations
                [1 ]Department of Electrical and Computer Engineering, Northeastern University , Boston, MA, USA
                [2 ]Materials and Manufacturing Directorate, Air Force Research Laboratory , Wright-Patterson AFB, OH, USA
                [3 ]Department of Physics, Northeastern University , Boston, MA
                [4 ]Shanghai Institute of Ceramics, Chinese Academy of Sciences , Shanghai, China
                [5 ]Winchester High School , Winchester, MA
                [6 ]Foxborough High School , Foxborough, MA
                [7 ]Boston Latin School , Boston, MA
                [8 ]Phillips Exeter Academy , Exeter, NH
                [9 ]Advanced Math & Science Academy Charter School , Marlborough MA
                [10 ]Weston High School , Weston, MA
                [11 ]These authors contributed equally to this work.
                Author notes
                Article
                srep03688
                10.1038/srep03688
                3891213
                f0187784-20b0-4c8a-8d43-254bcee17172
                Copyright © 2014, Macmillan Publishers Limited. All rights reserved

                This work is licensed under a Creative Commons Attribution 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by/3.0/

                History
                : 11 October 2013
                : 16 December 2013
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