论文标题

超快速反应期间激光诱导的原子上的原子力

Laser-induced forces on atoms during ultrafast demagnetization

论文作者

Zhang, G. P., Bai, Y. H.

论文摘要

激光诱导的飞秒消极作用引起了广泛的关注,作为信息存储技术的可能候选人。但是,在十年中,晶格振动是否直接参与了撤电战争。最近的电子衍射实验将电磁归因于极化的声子效应,但是类似的X射线衍射实验将其归因于Einstein-De Haas效应。这两个实验的共同点是,晶格的角动量和样品的旋转均未直接探测。在这里,我们报告了超快激光诱导的原子对原子上的第一个原理计算。我们采用两种互补方法:(i)带有电子激发的冷冻晶格和(ii)冻结的激发,但移动晶格。我们发现原子上的力始于-50 fs,峰值约为30 fs。力的大小远小于经验估计。在我们的理论范围内,我们的结果表明,极化的声子效应和Einstein-de haas效应不太可能是消灭的主要过程。我们希望我们的发现对激光诱导的磁性和量子材料动力学的未来方向产生深远的影响。

Laser-induced femtosecond demagnetization has attracted a broad attention as a possible candidate for information storage technology. However, whether or not lattice vibration directly participates in demagnetization has been highly controversial over a decade. A recent electron diffraction experiment attributed the demagnetization to the polarized phonon effect, but a similar x-ray diffraction experiment attributed it to the Einstein-de Haas effect. Common to both experiments is that neither the angular momentum of the lattice nor the rotation of the sample was directly probed. Here, we report our first first-principles calculation of forces on atoms induced by an ultrafast laser during ultrafast demagnetization. We employ two complementary methods: (i) the frozen lattice with electronic excitation and (ii) frozen excitation but moving the lattice. We find that the forces on atoms start at -50 fs and peak around 30 fs. The magnitude of the force is far smaller than the empirical estimates. Within the limit of our theory, our results suggest that the polarized phonon effect and the Einstein-de Haas effect are unlikely to be the main course of demagnetization. We expect that our finding has a profound impact on the future direction of laser-induced dynamics in magnetic and quantum materials.

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