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      Combining ferromagnetic resonator and digital image correlation to study the strain induced resonance tunability in magnetoelectric heterostructures.

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          Abstract

          This paper reports the development of a methodology combining microstrip ferromagnetic resonance and digital image correlation in order to simultaneously measure the voltage-induced strains and the magnetic resonance in artificial magnetoelectric heterostructures ("magnetic films/piezoelectric substrate" or "magnetic films/flexible substrate/piezoelectric actuator"). The overall principle of the technique and the related analytical modelling are described. It is powerful to estimate the magnetostriction coefficient of ferromagnetic thin films and can be used to determine the effective magnetoelectric coefficient of the whole heterostructures in addition to the piezoelectric coefficient related to the in-plane voltage-induced strains. This methodology can be applied to system for which the strains are well transmitted at the different interfaces.

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          Author and article information

          Journal
          Rev Sci Instrum
          The Review of scientific instruments
          AIP Publishing
          1089-7623
          0034-6748
          Oct 2014
          : 85
          : 10
          Affiliations
          [1 ] Laboratoire des Sciences des Procédés et des Matériaux, CNRS-Université Paris XIII, Sorbonne Paris Cité, Villetaneuse, France.
          [2 ] Laboratoire MSMP - Carnot Arts, ENSAM ParisTech, rue Saint-Dominique, 51006 Châlons-en-Champagne, France.
          [3 ] Institut d'Electronique Fondamentale, UMR 8622, Université Paris Sud-CNRS, Orsay, France.
          Article
          10.1063/1.4897237
          25362414
          89141995-09c2-4c17-9ef1-2089e88ac29c
          History

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