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      Preparation, structure and giant magnetoresistance of electrodeposited Fe Co/Cu multilayers

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          Abstract

          No systematic studies have been carried out on the giant magnetoresistance (GMR) of electrodeposited (ED) Fe-Co/Cu multilayers since the elaboration of a method for the optimization of the Cu layer deposition potential. In this paper, we present results on the electrochemical optimization of the Cu layer deposition potential which was found to depend on the relative iron concentration in the bath. An X-ray diffraction study of ED Fe5Co95(1.5 nm)/Cu(dCu) multilayers with dCu ranging from 0.8 nm to 10 nm revealed an fcc structure. For most of the multilayers, a weak superlattice satellite reflection could be identified. The room-temperature magnetoresistance was studied in detail as a function of the individual layer thicknesses. Multilayers with Cu layer thicknesses above about 1.5 nm were found to exhibit a GMR behavior with a maximum GMR of about 5 % and a typical saturation field of 1 kOe. The GMR magnitude decreased with increasing Fe-content in the magnetic layer. The spacer layer thickness evolution of the MR data was established in detail after separating the ferromagnetic and superparamagnetic GMR contributions and no oscillatory GMR was found. A comparison with literature data on both physically deposited and ED Fe-Co/Cu multilayers is also made.

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          Changes in the real structure and magnetoresistance of Co90Fe10/Cu and Co90Fe10/Cu85Ag10Au5 multilayers after annealing

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            Relevance of the potentiodynamic method in parameter selection for pulse-plating of Co–Cu/Cu multilayers

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              Author and article information

              Journal
              2016-10-18
              Article
              10.1149/2.053404jes
              1610.05631
              619baac7-2af4-471e-8a02-4472749505fe

              http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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              Custom metadata
              Jornal of the Electrochemical Society 161 (4), D154-D162 (2014)
              22 pages, 9 figures
              cond-mat.mtrl-sci

              Condensed matter
              Condensed matter

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