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Electron-phonon scattering dynamics in ferromagnetic metals and their influence on ultrafast demagnetization processes

机译:铁磁金属中的电子-声子散射动力学及其对超快退磁过程的影响

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摘要

We theoretically investigate spin-dependent carrier dynamics due to the electron-phonon interaction after ultrafast optical excitation in ferromagnetic metals. We calculate the electron-phonon matrix elements including the spin-orbit interaction in the electronic wave functions and the interaction potential. Using the matrix elements in Boltzmann scattering integrals, the momentum-resolved carrier distributions are obtained by solving their equation of motion numerically. We find that the optical excitation with realistic laser intensities alone leads to a negligible magnetization change, and that the demagnetization due to electron-phonon interaction is mostly due to hole scattering. Importantly, the calculated demagnetization quenching due to this Elliot-Yafet-type depolarization mechanism is not large enough to explain the experimentally observed result. We argue that the ultrafast demagnetization of ferromagnets does not occur exclusively via an Elliott-Yafet type process, i.e., scattering in the presence of the spin-orbit interaction, but is influenced to a large degree by a dynamical change of the band structure, i.e., the exchange splitting.
机译:我们从理论上研究了铁磁金属中超快光激发后电子与声子相互作用引起的自旋相关的载流子动力学。我们计算电子声子矩阵元素,包括电子波函数中的自旋轨道相互作用和相互作用势。利用玻尔兹曼散射积分中的矩阵元素,通过数值求解运动方程,可以获得动量分辨的载流子分布。我们发现仅具有现实激光强度的光激发导致的磁化强度变化可忽略不计,并且由于电子-声子相互作用引起的退磁主要是由于空穴散射造成的。重要的是,由于这种Elliot-Yafet型去极化机理而计算出的去磁猝灭作用不足以解释实验观察到的结果。我们认为,铁磁体的超快退磁并非仅通过Elliott-Yafet型过程发生,即在自旋轨道相互作用存在下发生散射,而是在很大程度上受到能带结构动态变化的影响,即,交流分裂。

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  • 来源
    《Physical review》 |2011年第22期|p.224405.1-224405.11|共11页
  • 作者单位

    Department of Physics and Research Center OPTIMAS, University of Kaiserslautern, P.O. Box 3094, D-67653 Kaiscrslautern, Germany;

    Department of Physics and Research Center OPTIMAS, University of Kaiserslautern, P.O. Box 3094, D-67653 Kaiscrslautern, Germany;

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