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Investigating the role of superdiffusive currents in laser induced demagnetization of ferromagnets with nanoscale magnetic domains

机译:研究超扩散电流在具有纳米级磁畴的铁磁体的激光感应退磁中的作用

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摘要

Understanding the loss of magnetic order and the microscopic mechanisms involved in laser induced magnetization dynamics is one of the most challenging topics in today's magnetism research. While scattering between spins, phonons, magnons and electrons have been proposed as sources for dissipation of spin angular momentum, ultrafast spin dependent transport of hot electrons has been pointed out as a potential candidate to explain ultrafast demagnetization without resorting to any spin dissipation channel. Here we use time resolved magneto-optical Kerr measurements to extract the influence of spin dependent transport on the demagnetization dynamics taking place in magnetic samples with alternating domains with opposite magnetization directions. We unambiguously show that whatever the sample magnetic configuration, the demagnetization takes place during the same time, demonstrating that hot electrons spin dependent transfer between neighboring domains does not alter the ultrafast magnetization dynamics in our systems with perpendicular anisotropy and 140 nm domain sizes.
机译:了解磁序的损失以及激光诱导的磁化动力学涉及的微观机制是当今磁学研究中最具挑战性的主题之一。虽然自旋,声子,磁振子和电子之间的散射已被提议作为自旋角动量耗散的来源,但热电子的超快自旋相关输运已被指出是解释超快退磁而不求助于任何自旋耗散通道的潜在候选者。在这里,我们使用时间分辨的磁光Kerr测量来提取自旋相关输运对在具有相反磁化方向的交替磁畴的磁性样品中发生的退磁动力学的影响。我们毫不含糊地表明,无论样品的磁性结构如何,退磁都会同时发生,这表明在垂直各向异性和140μnm畴尺寸的系统中,热电子自旋依赖于相邻畴之间的转移不会改变超快磁化动力学。

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