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通过铁磁单层中的相干声子激发控制超快磁化动力学

Controlling Ultrafast Magnetization Dynamics via Coherent Phonon Excitation in a Ferromagnet Monolayer.

作者信息

Zhou Zhaobo, Li Min, Frauenheim Thomas, He Junjie

机构信息

Department of Physical and Macromolecular Chemistry, Faculty of Science, Charles University, Prague 12843, Czech Republic.

School of Science, Constructor University, Bremen 28759, Germany.

出版信息

Nano Lett. 2024 Oct 2;24(39):12062-12069. doi: 10.1021/acs.nanolett.4c02325. Epub 2024 Sep 20.

Abstract

Exploring ultrafast magnetization control in 2D magnets via laser pulses is established, yet the interplay between spin dynamics and the lattice remains underexplored. Utilizing real-time time-dependent density functional theory (rt-TDDFT) coupled with Ehrenfest dynamics and nonadiabatic molecular dynamics (NAMD) simulations, we systematically investigate the laser-induced spin-nuclei dynamics with pre-excited A and E coherent phonons in the 2D ferromagnet FeGeTe (FGT) monolayer. Selective pre-excitation of coherent phonons under ultrafast laser irradiation significantly alters the local spin moment of FGT, consequently inducing additional spin loss attributed to the nuclear motion-induced asymmetric interatomic charge transfer. Excited spin-resolved charge undergoes a bidirectional spin-flip between spin-down and spin-up states, characterized by a subtle change in the spin moment within approximately 100 fs, followed by unidirectional spin-flip, which will further contribute to the spin moment loss of FGT within tens of picoseconds. Our results shed light on the coupling of coherent phonons with magnetization dynamics in 2D limit.

摘要

通过激光脉冲探索二维磁体中的超快磁化控制已获证实,但自旋动力学与晶格之间的相互作用仍未得到充分研究。利用实时含时密度泛函理论(rt-TDDFT)结合埃伦费斯特动力学和非绝热分子动力学(NAMD)模拟,我们系统地研究了二维铁磁体FeGeTe(FGT)单层中具有预激发A和E相干声子的激光诱导自旋-核动力学。超快激光辐照下相干声子的选择性预激发显著改变了FGT的局部自旋矩,从而导致了由于核运动引起的不对称原子间电荷转移而产生的额外自旋损失。激发的自旋分辨电荷在自旋向下和自旋向上状态之间经历双向自旋翻转,其特征是自旋矩在大约100飞秒内发生细微变化,随后是单向自旋翻转,这将在几十皮秒内进一步导致FGT的自旋矩损失。我们的结果揭示了二维极限下相干声子与磁化动力学的耦合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/782c/11451064/373411c4c1a0/nl4c02325_0001.jpg

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