DocumentCode :
1385830
Title :
The fabrication and magnetic properties of acicular magnetic nano-elements
Author :
Rührig, M. ; Khamsehpour, B. ; Kirk, K.J. ; Chapman, J.N. ; Aitchison, P. ; McVitie, S. ; Wilkinson, C.D.W.
Author_Institution :
Dept. of Phys. & Astron., Glasgow Univ., UK
Volume :
32
Issue :
5
fYear :
1996
fDate :
9/1/1996 12:00:00 AM
Firstpage :
4452
Lastpage :
4457
Abstract :
Two different lithographic techniques have been developed for fabricating magnetic nano-elements on ultra-thin electron-transparent substrates thereby allowing transmission electron microscopy to be used to investigate their properties. Here we describe studies of elements of micropolycrystalline Permalloy and cobalt whose thicknesses lie in the range 20-30 nm. Bright field images show that a high degree of edge acuity is attained and elements with lateral dimensions ≈25 nm have been produced. Lorentz microscopy has provided unique insight into the detailed magnetisation reversal mechanisms in acicular elements with widths in the range 100-300 nm. In cobalt elements a single domain occupies most of the volume with complex domain structures existing very close to the ends; switching fields increase markedly with decreasing element width but are substantially independent of element length. The reversal mechanism is found to involve the propagation of a small “reversing” domain structure along the element length. In Permalloy, extensive domain structures are observed in all but the narrowest elements in the remanent state. The response to applied fields is described
Keywords :
Permalloy; cobalt; electron beam lithography; ferromagnetic materials; magnetic domains; magnetic particles; magnetic thin films; magnetisation reversal; nanostructured materials; photolithography; remanence; transmission electron microscopy; 100 to 300 nm; 20 to 30 nm; Co; FeNi; Lorentz microscopy; acicular magnetic nano-elements; applied fields; bright field images; complex domain structures; edge acuity; fabrication; lithographic techniques; magnetic properties; magnetisation reversal mechanisms; micropolycrystalline Permalloy; remanent state; reversal mechanism; reversing domain structure; single domain; switching fields; transmission electron microscopy; ultra-thin electron-transparent substrates; Cobalt; Fabrication; Magnetic films; Magnetic force microscopy; Magnetic properties; Magnetization reversal; Magnetooptic recording; Resists; Substrates; Transmission electron microscopy;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.538897
Filename :
538897
Link To Document :
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