Title :
Magnetic properties of Au1-xFex nanowires
Author :
Jorritsma, J. ; Mydosh, J.A.
Author_Institution :
Kamerlingh Onnes Lab., Leiden Univ., Netherlands
fDate :
7/1/1998 12:00:00 AM
Abstract :
We have investigated the magnetic properties of Au1-xFe x (x=0.03,0.15) nanowire arrays by performing magnetization and magnetoresistance (MR) measurements between 4.2 and 300 K. The Au 1-xFex nanowires range from 50-120 nm in width, and are prepared by oblique coevaporation of Au and Fe onto V-groove patterned InP substrates. The magnetization of as-prepared Au0.85 Fe0.15 wires shows a zero-field/field-cooled irreversibility, which is typical for granular magnetic materials. The width of the zero-field-cooled maximum indicates a broad distribution of Fe cluster sizes. At 4.2 K the MR ratio has a maximum of 5% for the Au 0.97Fe0.13 wires and 14% for the Au0.85Fe0.15 wires. By using a simple superparamagnetic model, the MR can provide quantitative information on the size range of the Fe clusters and their average effective anisotropy constant K. We find that the Fe clusters in Au0.97Fe0.03 wires consist of 1-6 Fe atoms with K≈80 J/cm3, while Au0.85Fe0.15 wires contain a much broader cluster size range with Fe clusters consisting of 1-40 Fe atoms with K≈60 J/cm3
Keywords :
gold alloys; iron alloys; magnetic anisotropy; magnetic particles; magnetisation; magnetoresistance; nanostructured materials; 4.2 to 300 K; 50 to 120 nm; Au0.85Fe0.15; Au0.85Fe0.15 wires; Au0.97Fe0.03 wires; Au0.97Fe0.13; Au1-xFex nanowires; Fe cluster sizes; InP; V-groove patterned InP substrates; as-prepared Au0.85Fe0.15 wires; average effective anisotropy constant; field-cooled irreversibility; granular magnetic materials; magnetic properties; magnetization; magnetoresistance; nanowire arrays; oblique coevaporation; size range; superparamagnetic model; zero-field irreversibility; zero-field-cooled maximum; Giant magnetoresistance; Gold; Indium phosphide; Iron; Magnetic anisotropy; Magnetic field measurement; Magnetic properties; Nanowires; Perpendicular magnetic anisotropy; Wires;
Journal_Title :
Magnetics, IEEE Transactions on