Review of Ultrafast Demagnetization After Femtosecond Laser Pulses: A Complex Interaction of Light with Quantum Matter

M. Fähnle, Michael Haag, C. Illg, B. Y. Mueller, W. Weng, T. Tsatsoulis, Haonan Huang, J. Briones, N. Teeny, Lifa Zhang, T. Kuhn
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引用次数: 10

Abstract

When a magnetic film is excited by a femtosecond laser pulse, either with THz or with optical frequencies, then there is at least a partial demagnetization within a few hundred femtoseconds, followed by a remagnetization to the original state on a bit longer time scale. This phenomenon is caused by a complex interaction of light with quantum matter. This paper gives a review of the present knowledge of the underlying physics. It discusses first the situation of a direct change of the magnetization by its interaction with the electromagnetic wave of the laser pulse, which appears during THz laser pulses with small field amplitudes. Then it considers the situation of an indirect change which appears after THz laser pulses with large field amplitudes and after optical laser pulses. In these cases the laser photons primarily excite electrons, with subsequent modifications of their spin-angular momenta by spin-flip scatterings of these electrons at quasiparticles, either at other electrons or at phonons or at magnons. The contributions of these various spin-flip scatterings to demagnetization are investigated. Then the transfer of angular momentum from the electronic spin system to the lattice during ultrafast demagnetization is discussed by describing the lattice vibrations in terms of magnetoelastic spin-phonon modes. Finally, the effect of electronic correlations in the sense of the density-matrix theory is investigated.
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飞秒激光脉冲后的超快退磁研究综述:光与量子物质的复杂相互作用
当磁膜被飞秒激光脉冲激发时,无论是太赫兹还是光学频率,在几百飞秒内至少会有部分退磁,然后在更长的时间尺度上再磁化到原始状态。这种现象是由光与量子物质的复杂相互作用引起的。本文对基础物理学的现有知识进行了综述。本文首先讨论了太赫兹小场幅激光脉冲中磁化强度与激光脉冲电磁波相互作用而发生直接变化的情况。然后考虑了大场幅太赫兹激光脉冲和光学激光脉冲后的间接变化情况。在这些情况下,激光光子首先激发电子,然后通过这些电子在准粒子上的自旋翻转散射来改变它们的自旋角动量,或者在其他电子上,或者在声子上,或者在磁振子上。研究了这些不同的自旋翻转散射对消磁的贡献。然后用磁弹性自旋-声子模式描述晶格振动,讨论了在超快退磁过程中角动量从电子自旋系统向晶格的传递。最后,研究了密度矩阵理论意义上的电子相关的影响。
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