论文标题

氧化物中光诱导的铁磁性的动力学的动力学

Dynamics of photo-induced ferromagnetism in oxides with orbital degeneracy

论文作者

Curtis, Jonathan B., Disa, Ankit, Fechner, Michael, Cavalleri, Andrea, Narang, Prineha

论文摘要

通过使用强烈的相干电磁辐射,可以非常快速地操纵量子材料的性能,甚至可以诱导平衡中不存在的新的且潜在的有用阶段。例如,对磁化动力学的超快控制对于许多提出的自旋设备至关重要,并且还可以阐明相关相的可能动力学,从而使平衡相关。受到旋转轨道铁磁铁YTIO $ _3 $的最新实验的启发,我们认为具有低扁透明轨道激发的海森贝格铁磁绝缘子的非平衡动力学。我们按照光学脉冲对该系统中的磁弹性激发的动力学进行建模,从而共同激发了红外活跃的声子模式。当声子向下响起时,他们可以将轨道与低洼的少量搭配,从而导致镁质的有效浴缸进行了巨大修饰。我们显示这种瞬态耦合可以导致磁化动力学的动态加速度,否则小各向异性将其瓶颈。更多地探索参数空间,我们发现磁动力学甚至可以完全逆转,当泵相对于轨道浴的谐振而蓝色时,导致负松弛率。因此,我们表明,通过使用特殊靶向的光学脉冲,可以对磁化动力学发挥更大程度的控制,从而使一个人可以在该系统中光学地指导磁性。最后,我们讨论了我们在此处发现的磁化动力学与最新实验之间的有趣相似之处,并在其中类似地观察到,根据初始泵频率,出现了明显的亚稳态超导阶段。

By using intense coherent electromagnetic radiation, it may be possible to manipulate the properties of quantum materials very quickly, or even induce new and potentially useful phases that are absent in equilibrium. For instance, ultrafast control of magnetic dynamics is crucial for a number of proposed spintronic devices and can also shed light on the possible dynamics of correlated phases out of equilibrium. Inspired by recent experiments on spin-orbital ferromagnet YTiO$_3$ we consider the nonequilibrium dynamics of Heisenberg ferromagnetic insulator with low-lying orbital excitations. We model the dynamics of the magnon excitations in this system following an optical pulse which resonantly excites infrared-active phonon modes. As the phonons ring down they can dynamically couple the orbitals with the low-lying magnons, leading to a dramatically modified effective bath for the magnons. We show this transient coupling can lead to a dynamical acceleration of the magnetization dynamics, which is otherwise bottlenecked by small anisotropy. Exploring the parameter space more we find that the magnon dynamics can also even completely reverse, leading to a negative relaxation rate when the pump is blue-detuned with respect to the orbital bath resonance. We therefore show that by using specially targeted optical pulses, one can exert a much greater degree of control over the magnetization dynamics, allowing one to optically steer magnetic order in this system. We conclude by discussing interesting parallels between the magnetization dynamics we find here and recent experiments on photo-induced superconductivity, where it is similarly observed that depending on the initial pump frequency, an apparent metastable superconducting phase emerges.

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