论文标题

$α$ -rucl $ _ {3} $的非平衡动力学 - 时间分辨的磁光谱研究

Nonequilibrium dynamics of $α$-RuCl$_{3}$ -- a time-resolved magneto-optical spectroscopy study

论文作者

Wagner, Julian, Sahasrabudhe, Anuja, Versteeg, Rolf, Wang, Zhe, Tsurkan, Vladimir, Loidl, Alois, Hedayat, Hamoon, van Loosdrecht, Paul H. M.

论文摘要

我们介绍了磁性莫特 - 哈伯德(Mott-Hubbard)的磁光光谱,构成Kitaev旋转液体候选$α$ -RUCL $ _3 $,以研究其抗铁磁性有序的Zigzag Zigzag地面的非平衡动力学。在不同的实验条件下(温度,外部磁场,光激发密度)在瞬态磁性线性二科运动的系统研究可直接访问电荷激发与超舒张时间尺度上的锯齿形订购状态的动态相互作用。我们观察到一个相当缓慢的初始反电磁化(PS的少量至10秒),然后是长期寿命的非热抗铁磁旋转旋转状态(100 $ -1000 $ 1000s的PS),可以通过圆环来理解,并在phopotecatical术后使用抗fiferromagnetic背景来理解。在存在外部磁场的情况下,温度和通畅的变化揭示了与锯齿形和量子顺磁性无序相关的两个不同的光诱导动力学。光诱导的非热自旋序列状态显示了与纳秒时间尺度上曲折域的生长和传播有关的通用压缩指数恢复动力学,这在磁力化逆转的fatuzzo-labrune模型的框架内进行了解释。对密切相关材料中非平衡状态的研究是一个相对尚未探索的主题,但我们的结果预计可以扩展到具有强旋转轨道耦合的大量Mott-Hubbard绝缘子材料。

We present time-resolved magneto-optical spectroscopy on the magnetic Mott-Hubbard-insulating Kitaev spin liquid candidate $α$-RuCl$_3$ to investigate the nonequilibrium dynamics of its antiferromagnetically ordered zigzag groundstate after photoexcitation. A systematic study of the transient magnetic linear dichroism under different experimental conditions (temperature, external magnetic field, photoexcitation density) gives direct access to the dynamical interplay of charge excitations with the zigzag ordered state on ultrashort time scales. We observe a rather slow initial demagnetization (few to 10s of ps) followed by a long-lived non-thermal antiferromagnetic spin-disordered state (100$-$1000s of ps), which can be understood in terms of holons and doublons disordering the antiferromagnetic background after photoexcitation. Varying temperature and fluence in the presence of an external magnetic field reveals two distinct photoinduced dynamics associated with the zigzag and quantum paramagnetic disordered phases. The photo-induced non-thermal spin-disordered state shows universal compressed-exponential recovery dynamics related to the growth and propagation of zigzag domains on nanosecond time scales, which is interpreted within the framework of the Fatuzzo-Labrune model for magnetization reversal. The study of nonequilibrium states in strongly correlated materials is a relatively unexplored topic, but our results are expected to be extendable to a large class of Mott-Hubbard insulator materials with strong spin-orbit coupling.

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