Low-temperature growth of giant magnetoresistance spin valves
- 1 January 1996
- journal article
- research article
- Published by AIP Publishing in Journal of Applied Physics
- Vol. 79 (1) , 282-290
- https://doi.org/10.1063/1.360942
Abstract
We have investigated the dependence of the giant magnetoresistance (GMR) effect, the coercivity, the coupling field, and the resistivity on film deposition at low‐substrate temperatures (150 K) in spin valve multilayers of the general type: FeMn/Ni80Fe20/Co/Cu/Co/Ni80Fe20/glass. Low substrate temperatures tend to suppress both thermally activated surface diffusion of deposited atoms and interdiffusion at interfaces, which often occur during thin‐film deposition at room temperature. We find significant increases in the GMR, significant reductions in the magnetic coupling across the Cu layer, slight reductions in the coercivity of the unpinned film, and slight reductions in the resistivity depending on which parts of the multilayer are deposited at low temperature. When the entire film is deposited at 150 K we obtain a GMR of 8.8% at a coercivity of less than 0.5 mT (5 Oe).This publication has 41 references indexed in Scilit:
- Step-facilitated dissociation of small metal clusters: A molecular-dynamics studyPhysical Review B, 1994
- Distribution of current in spin valves (abstract)Journal of Applied Physics, 1994
- Room-Temperature Instability of Co/Cu(111)Physical Review Letters, 1994
- Time dependence of step fluctuations on vicinal Cu(1 1 19) surfaces investigated by tunneling microscopyPhysical Review Letters, 1993
- Giant magnetoresistance of Co/Cu multilayers with and without Fe buffer layersJournal of Applied Physics, 1993
- Growth and structure of thin Co films on Cu(111) studied by full-solid-angle x-ray photoelectron distributionsPhysical Review B, 1993
- Scanning-tunneling-microscopy study of the growth of cobalt on Cu(111)Physical Review B, 1993
- Growth temperature dependence of magnetoresistance in Co/Cu(111) wedged superlatticesPhysical Review B, 1993
- Annealed Cu/Co/Cu/NïFe/Femn Spin Valves: Nanostructure and MagnetismMRS Proceedings, 1993
- Oscillatory magnetic exchange coupling through thin copper layersPhysical Review Letters, 1991