Please use this identifier to cite or link to this item: http://hdl.handle.net/11452/30115
Title: Simple electrodepositing of CoFe/Cu multilayers: Effect of ferromagnetic layer thicknesses
Authors: Koçkar, Hakan
Uludağ Üniversitesi/Fen-Edebiyat Fakültesi/Fizik Bölümü.
0000-0001-6737-3838
Alper, Mürsel
Tekgül, Atakan
AAG-8795-2021
P-2124-2016
7005719283
37462175100
Keywords: Materials science
Physics
CoFe/Cu multilayer
Electrodeposition
GMR
Multilayer
XRD
Co-fe/cu multilayers
Giant magnetoresistance
Co/cu multilayers
Extraordinary magnetoresistance
Saturation fields
Superlattices
Alloys
Electrodes
Ferromagnetic materials
Ferromagnetism
Galvanomagnetic effects
Giant magnetoresistance
Hard disk storage
Magnetic materials
Magnetism
Magnetization
Multilayers
Saturation magnetization
Sensitivity analysis
Cathode potential
Magnetic multilayers
Current-time transient
Cyclic voltammograms
Ferromagnetic layers
Field sensitivity
Giant magnetoresistance (GMR) effects
Saturated calomel electrode
Issue Date: 15-Jun-2016
Publisher: Elsevier
Citation: Tekgül, A. vd. (2017). ''Simple electrodepositing of CoFe/Cu multilayers: Effect of ferromagnetic layer thicknesses''. Journal of Magnetism and Magnetic Materials, 421, 472-476.
Abstract: The CoFe/Cu magnetic multilayers were produced by changing CoFe ferromagnetic layers from 3 nm to 10 nm using electrodeposition. By now, the thinnest Cu (0.5 nm) layer thicknesses were used to see whether the GMR effect in the multilayers can be obtained or not since the pinning of non-magnetic layer between the ferromagnetic layers is required. For the proper depositions, the cyclic voltammograms was used, and the current-time transients were obtained. The Cu and CoFe layers were deposited at a cathode potential of -0.3 and -1.5 V with respect to saturated calomel electrode, respectively. From the XRD patterns, the multilayers were shown to be fcc crystal structures. For the magnetization measurements, saturation magnetization increases from 160 to 600 kA/m from 3 to 8 nm ferromagnetic layer thicknesses. And, the coercivity values increase until the 8 nm of the CoFe layer thickness. It is seen that the thin Cu layer(fixed at 0.5 nm) and pinholes support the random magnetization orientation and thus all multilayers exhibited the giant magnetoresistance(GMR) effect, and the highest GMR value was observed about 5.5%. And, the variation of GMR field sensitivity was calculated. The results show that the GMR and GMR sensitivity are compatible among the multilayers. The CoFe/Cu magnetic multilayers having GMR properties are used in GMR sensors and hard disk drive of the nano-technological devices.
URI: https://doi.org/10.1016/j.jmmm.2016.06.039
https://www.sciencedirect.com/science/article/pii/S0304885316311180
1873-4766
http://hdl.handle.net/11452/30115
ISSN: 0304-8853
Appears in Collections:Scopus
Web of Science

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