We have investigated transport properties of iron (Fe) nanoparticles embedded in zinc selenide (ZnSe) semiconducting epilayers prepared by molecular beam epitaxy. Both positive and negative tunneling magnetoresistances (TMRs) were measured depending on the applied voltage biases and on the temperature. A slow reduction of the TMR magnitude with temperature was detected and it could be explained in terms of a crossover between direct/resonant tunneling and variable range hopping. The temperature behavior of the magnetoresistance is a clear signature of tunneling and hopping mechanisms mediated by the ZnSe barrier localized states. (C) 2008 American Institute of Physics.1031
The combination of magnetic and semiconducting properties in one material system has great potentia...
The combination of magnetic and semiconducting properties in one material system has great potentia...
The Fe growth on ZnSe(001) takes place via the initial formation of superparamagnetic nano-islands t...
International audienceWe have investigated transport properties of iron (Fe) nanoparticles embedded ...
International audienceWe report on the magnetic and magnetotransport properties of Fe clustered part...
International audienceWe report on the magnetic and magnetotransport properties of Fe clustered part...
International audienceWe report on resonant tunneling magnetoresistance via localized states (LS) th...
International audienceWe report on resonant tunneling magnetoresistance via localized states (LS) th...
The combination of magnetic and semiconducting properties in one material system has great potential...
The use of a semiconductor barrier in heteroepitaxy with ferromagnetic metal electrodes describes a ...
The use of a semiconductor barrier in heteroepitaxy with ferromagnetic metal electrodes describes a ...
Electric and magnetic properties of nanoscopic clusters of iron immersed in Zinc Selenide were studi...
© 2018, Pleiades Publishing, Inc. Dependences of the tunnel magnetoresistance and in-plane component...
The combination of magnetic and semiconducting properties in one material system has great potentia...
The combination of magnetic and semiconducting properties in one material system has great potentia...
The combination of magnetic and semiconducting properties in one material system has great potentia...
The combination of magnetic and semiconducting properties in one material system has great potentia...
The Fe growth on ZnSe(001) takes place via the initial formation of superparamagnetic nano-islands t...
International audienceWe have investigated transport properties of iron (Fe) nanoparticles embedded ...
International audienceWe report on the magnetic and magnetotransport properties of Fe clustered part...
International audienceWe report on the magnetic and magnetotransport properties of Fe clustered part...
International audienceWe report on resonant tunneling magnetoresistance via localized states (LS) th...
International audienceWe report on resonant tunneling magnetoresistance via localized states (LS) th...
The combination of magnetic and semiconducting properties in one material system has great potential...
The use of a semiconductor barrier in heteroepitaxy with ferromagnetic metal electrodes describes a ...
The use of a semiconductor barrier in heteroepitaxy with ferromagnetic metal electrodes describes a ...
Electric and magnetic properties of nanoscopic clusters of iron immersed in Zinc Selenide were studi...
© 2018, Pleiades Publishing, Inc. Dependences of the tunnel magnetoresistance and in-plane component...
The combination of magnetic and semiconducting properties in one material system has great potentia...
The combination of magnetic and semiconducting properties in one material system has great potentia...
The combination of magnetic and semiconducting properties in one material system has great potentia...
The combination of magnetic and semiconducting properties in one material system has great potentia...
The Fe growth on ZnSe(001) takes place via the initial formation of superparamagnetic nano-islands t...