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Theory of photoinduced ultrafast switching to a spin-orbital ordered hidden phase

机译:光致超快切换到自旋轨道有序隐藏相的理论

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摘要

Photo-induced hidden phases are often observed in materials with intertwined orders. Understanding the formation of these non-thermal phases is challenging and requires a resolution of the cooperative interplay between different orders on the ultra-short timescale. In this work, we demonstrate that non-equilibrium photo-excitations can induce a state with spin-orbital orders entirely different from the equilibrium state in the three-quarter-filled two-band Hubbard model. We identify a general mechanism governing the transition to the hidden state, which relies on a non-thermal partial melting of the intertwined orders mediated by photoinduced charge excitations in the presence of strong spin-orbital exchange interactions. Our study theoretically confirms the crucial role played by orbital degrees of freedom in the light-induced dynamics of strongly correlated materials and it shows that the switching to hidden states can be controlled already on the fs timescale of the electron dynamics.
机译:光诱导的隐藏相通常在具有交错顺序的材料中观察到。了解这些非热相的形成具有挑战性,并且需要在超短时间尺度上解决不同阶之间的协同相互作用。在这项工作中,我们证明了非平衡光激发可以诱发自旋轨道阶数的状态,该状态与充满四分之三的两波段Hubbard模型中的平衡状态完全不同。我们确定了一种控制过渡到隐藏状态的一般机制,该机制依赖于在强自旋-轨道交换相互作用下由光诱导的电荷激发介导的纠缠顺序的非热部分熔化。我们的研究从理论上证实了轨道自由度在强相关材料的光诱导动力学中所起的关键作用,并且表明,在电子动力学的fs时标上已经可以控制向隐藏状态的转换。

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