Literature DB >> 29665332

Laser-Rewriteable Ferromagnetism at Thin-Film Surfaces.

Jonathan Ehrler1,2, Miao He3, Maxim V Shugaev3, Nikolay I Polushkin4,5, Sebastian Wintz1,6, Vico Liersch1, Steffen Cornelius1, René Hübner1, Kay Potzger1, Jürgen Lindner1, Jürgen Fassbender1,2, Ahmet A Ünal7, Sergio Valencia7, Florian Kronast7, Leonid V Zhigilei3,8, Rantej Bali1.   

Abstract

Manipulation of magnetism using laser light is considered as a key to the advancement of data storage technologies. Until now, most approaches seek to optically switch the direction of magnetization rather than to reversibly manipulate the ferromagnetism itself. Here, we use ∼100 fs laser pulses to reversibly switch ferromagnetic ordering on and off by exploiting a chemical order-disorder phase transition in Fe60Al40, from the B2 to the A2 structure and vice versa. A single laser pulse above a threshold fluence causes nonferromagnetic B2 Fe60Al40 to disorder and form the ferromagnetic A2 structure. Subsequent laser pulsing below the threshold reverses the surface to B2 Fe60Al40, erasing the laser-induced ferromagnetism. Simulations reveal that the order-disorder transition is regulated by the extent of surface supercooling; above the threshold for complete melting throughout the film thickness, the liquid phase can be deeply undercooled before solidification. As a result, the vacancy diffusion in the resolidified region is limited and the region is trapped in the metastable chemically disordered state. Laser pulsing below the threshold forms a limited supercooled surface region that solidifies at sufficiently high temperatures, enabling diffusion-assisted reordering. This demonstrates that ultrafast lasers can achieve subtle atomic rearrangements in bimetallic alloys in a reversible and nonvolatile fashion.

Entities:  

Keywords:  data storage; fs laser modifications; magneto-optical devices; order−disorder transitions; phase transitions; supercooling

Year:  2018        PMID: 29665332     DOI: 10.1021/acsami.8b01190

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  2 in total

1.  Magnetic response of FeRh to static and dynamic disorder.

Authors:  Benedikt Eggert; Alexander Schmeink; Johanna Lill; Maciej Oskar Liedke; Ulrich Kentsch; Maik Butterling; Andreas Wagner; Sakura Pascarelli; Kay Potzger; Jürgen Lindner; Thomas Thomson; Jürgen Fassbender; Katharina Ollefs; Werner Keune; Rantej Bali; Heiko Wende
Journal:  RSC Adv       Date:  2020-04-07       Impact factor: 4.036

2.  Resonance behavior of embedded and freestanding microscale ferromagnets.

Authors:  Hamza Cansever; Md Shadab Anwar; Sven Stienen; Kilian Lenz; Ryszard Narkowicz; Gregor Hlawacek; Kay Potzger; Olav Hellwig; Jürgen Fassbender; Jürgen Lindner; Rantej Bali
Journal:  Sci Rep       Date:  2022-08-31       Impact factor: 4.996

  2 in total

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