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由光激发稀土层内磁应力饱和产生的非常规皮秒应变脉冲。

Unconventional picosecond strain pulses resulting from the saturation of magnetic stress within a photoexcited rare earth layer.

作者信息

von Reppert A, Mattern M, Pudell J-E, Zeuschner S P, Dumesnil K, Bargheer M

机构信息

Institut für Physik & Astronomie, Universität Potsdam, Karl-Liebknecht-Str. 24-25, 14476 Potsdam, Germany.

Institut Jean Lamour (UMR CNRS 7198), Université Lorraine, 54000 Nancy, France.

出版信息

Struct Dyn. 2020 Mar 27;7(2):024303. doi: 10.1063/1.5145315. eCollection 2020 Mar.

Abstract

Optical excitation of spin-ordered rare earth metals triggers a complex response of the crystal lattice since expansive stresses from electron and phonon excitations compete with a contractive stress induced by spin disorder. Using ultrafast x-ray diffraction experiments, we study the layer specific strain response of a dysprosium film within a metallic heterostructure upon femtosecond laser-excitation. The elastic and diffusive transport of energy to an adjacent, non-excited detection layer clearly separates the contributions of strain pulses and thermal excitations in the time domain. We find that energy transfer processes to magnetic excitations significantly modify the observed conventional bipolar strain wave into a unipolar pulse. By modeling the spin system as a saturable energy reservoir that generates substantial contractive stress on ultrafast timescales, we can reproduce the observed strain response and estimate the time- and space dependent magnetic stress. The saturation of the magnetic stress contribution yields a non-monotonous total stress within the nanolayer, which leads to unconventional picosecond strain pulses.

摘要

自旋有序稀土金属的光激发会引发晶格的复杂响应,因为电子和声子激发产生的膨胀应力与自旋无序引起的收缩应力相互竞争。利用超快X射线衍射实验,我们研究了金属异质结构中镝薄膜在飞秒激光激发下的层特异性应变响应。能量向相邻非激发检测层的弹性和扩散传输在时域中清晰地分离了应变脉冲和热激发的贡献。我们发现,向磁激发的能量转移过程显著地将观察到的传统双极应变波转变为单极脉冲。通过将自旋系统建模为一个在超快时间尺度上产生大量收缩应力的可饱和能量库,我们可以重现观察到的应变响应并估计时间和空间相关的磁应力。磁应力贡献的饱和导致纳米层内的总应力非单调,从而产生非常规的皮秒应变脉冲。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9146/7101248/766f26e1ef6c/SDTYAE-000007-024303_1-g001.jpg

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