Bierbrauer Ute, Weber Sebastian T, Schummer David, Barkowski Moritz, Mahro Anna-Katharina, Mathias Stefan, Christian Schneider Hans, Stadtmüller Benjamin, Aeschlimann Martin, Rethfeld Baerbel
Department of Physics and OPTIMAS Research Center, University of Kaiserslautern, Erwin-Schrödinger-Strasse 46, 67663 Kaiserslautern, Germany.
J Phys Condens Matter. 2017 Jun 21;29(24):244002. doi: 10.1088/1361-648X/aa6f73. Epub 2017 May 16.
Magnetization dynamics on a femtosecond timescale has been observed for a huge variety of magnetic structures. However, the influence of different excitation photon energies has not been studied in detail yet. In our time-resolved magneto-optical Kerr effect setup we excite a Nickel bulk system with 1.55 and 3.1 eV, respectively, leading to different remagnetization dynamics depending on the chosen photon energy. Furthermore we complement our experimental data with a theoretical approach applying appropriate Boltzmann collision integrals including the density of states of Nickel. The comparison between the experimental data and the theoretical approach indicates that photon-energy dependent transport processes play a major role in this setup.
在飞秒时间尺度上,已经观测到了各种各样磁性结构的磁化动力学。然而,不同激发光子能量的影响尚未得到详细研究。在我们的时间分辨磁光克尔效应装置中,我们分别用1.55和3.1电子伏特激发镍块体系统,这导致根据所选光子能量产生不同的再磁化动力学。此外,我们用一种理论方法补充我们的实验数据,该方法应用了适当的玻尔兹曼碰撞积分,包括镍的态密度。实验数据与理论方法之间的比较表明,光子能量相关的输运过程在该装置中起主要作用。