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All-optical control of ferromagnetic thin films and nanostructures: Competition between polarized light and applied magnetic field

机译:铁磁薄膜和纳米结构的全光控制:偏振光和外加磁场之间的竞争

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摘要

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. Very recently, we demonstrated, 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. In this presentation we will study in detail the combine effect of applied magnetic field and polarized light. Depending on the light polarization and the applied field direction the two effect can add or cancel each other. The influence of both the helicity and the applied on domain structure is studied for different [Co/Pt] multilayers.
机译:自从Faraday和Kerr最初观察到磁性材料影响光偏振以来,光与磁的相互作用一直是一个有趣的话题。虽然历史上已经利用这些效应来将光用作磁性材料的探针,但有关使用偏振光来更改或操纵磁性的研究也越来越多。例如,对于特定的亚铁磁性材料,已经观察到使用圆偏振光的激光脉冲而没有任何施加磁场的确定性磁性切换。最近,我们证明了正在探索从磁性薄膜到多层甚至是粒状薄膜的铁磁材料的光学控制,以进行超高密度磁记录。我们的发现表明,磁性材料的光学控制是一种比以前设想的要普遍得多的现象。这些结果挑战了当前的理论理解,并将通过集成铁磁位的光学控制对数据存储和存储行业产生重大影响。在本演示中,我们将详细研究施加的磁场和偏振光的组合效应。取决于光的偏振和所施加的场方向,这两种效应可以彼此叠加或抵消。对于不同的[Co / Pt]多层膜,研究了螺旋度和施加的膜厚对畴结构的影响。

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