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All-optical control of ferromagnetic thin films and nanostructures

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arxiv 1403.0784 v1 pith:ENC5UYEF submitted 2014-03-04 cond-mat.mtrl-sci

classification cond-mat.mtrl-sci
keywords magneticlightmaterialscontrolbeenferromagneticfilmsoptical
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The interplay of light and magnetism has been a topic of interest since the original observations of Faraday and Kerr where magnetic materials affect the light polarization. While these effects have historically been exploited to use light as a probe of magnetic materials there is increasing research on using polarized light to alter or manipulate magnetism. For instance deterministic magnetic switching without any applied magnetic fields using laser pulses of the circular polarized light has been observed for specific ferrimagnetic materials. Here we demonstrate, for the first time, optical control of ferromagnetic materials ranging from magnetic thin films to multilayers and even granular films being explored for ultra-high-density magnetic recording. Our finding shows that optical control of magnetic materials is a much more general phenomenon than previously assumed. These results challenge the current theoretical understanding and will have a major impact on data memory and storage industries via the integration of optical control of ferromagnetic bits.

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  1. Element specificity of transient extreme ultra-violet magnetic dichroism

    cond-mat.mtrl-sci 2019-08 conditional novelty 6.0 of 10

    Transient XUV magnetic circular dichroism in Co and CoPt, computed with time-dependent density functional theory, matches experiment and confirms that specific spectral peaks track the spin moments of Co and Pt separately.

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