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Kronseder, Matthias ; Buchner, Martin ; Bauer, H. G. ; Back, Christian H.

Dipolar-energy-activated magnetic domain pattern transformation driven by thermal fluctuations

Kronseder, Matthias, Buchner, Martin, Bauer, H. G. and Back, Christian H. (2013) Dipolar-energy-activated magnetic domain pattern transformation driven by thermal fluctuations. Nature Communications 4, p. 2054.

Date of publication of this fulltext: 20 Feb 2023 10:31
Article
DOI to cite this document: 10.5283/epub.53825


Abstract

Two-dimensional ferromagnetic layers can serve as a playground for the study of basic physical properties of various pattern forming systems by virtue of their tuneable magnetic properties. Here we use threshold photoemission magnetic circular dichroism in combination with photoemission electron microscopy to investigate ultra-thin ferromagnetic Fe/Ni/Cu(001) films in the stripe domain phase near ...

Two-dimensional ferromagnetic layers can serve as a playground for the study of basic physical properties of various pattern forming systems by virtue of their tuneable magnetic properties. Here we use threshold photoemission magnetic circular dichroism in combination with photoemission electron microscopy to investigate ultra-thin ferromagnetic Fe/Ni/Cu(001) films in the stripe domain phase near the spin reorientation transition as a function of film thickness, temperature and effective anisotropy. Here we report a metastable domain state with domain width larger than the thermodynamically stable one as a result of a rapid reduction of the anisotropy. The transformation into the equilibrium state takes place via the propagation of a transition front, which originates from defined steps in the film thickness.



Involved Institutions


Details

Item typeArticle
Journal or Publication TitleNature Communications
Publisher:NATURE PUBLISHING GROUP
Place of Publication:LONDON
Volume:4
Page Range:p. 2054
Date19 June 2013
InstitutionsPhysics > Institute of Experimental and Applied Physics > Alumni or Retired Professors > Chair Professor Back > Group Christian Back
Physics > Institute of Experimental and Applied Physics > Prof. Jörg Wunderlich
Identification Number
ValueType
10.1038/ncomms3054DOI
KeywordsULTRATHIN FERROMAGNETIC-FILMS; SPIN REORIENTATION TRANSITION; CESIUM; FE/NI/CU(001); ANISOTROPY; NI(100); PHASE;
Dewey Decimal Classification500 Science > 530 Physics
StatusPublished
RefereedYes, this version has been refereed
Created at the University of RegensburgYes
URN of the UB Regensburgurn:nbn:de:bvb:355-epub-538258
Item ID53825

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