论文标题

绕过电子秩序超快融化中的结构瓶颈

Bypassing the structural bottleneck in the ultrafast melting of electronic order

论文作者

Yang, L. X., Rohde, G., Stange, K. Hanff. A., Xiong, R., Shi, J., Bauer, M., Rossnagel, K.

论文摘要

量子材料的新兴特性,例如对称性相结合的相位和相关的光谱间隙,可以通过超短光子脉冲有效地操纵。冲动性光学激发通常会导致复杂的非平衡电子和晶格动力学,涉及在不同的时间尺度上进行多个过程,并且一个共同的概念是,在大约100 fs的时间范围内,电子光谱中的间隙不受晶格振动的严重影响。在这里,我们直接监视了规范电荷密度波材料中光谱间隙的光诱导崩溃,蓝色青铜RB0.3MOO3。我们发现,由于有效的热电子能量耗散而导致的超快速(约60 fs)振动无序的漏洞明显快于相对于一半循环振荡(约315 fs)相干电荷密度的波度波振幅模式的典型结构瓶颈时间。该结果不仅证明了晶格运动在光引起的电子顺序淬灭中的重要性,而且还解决了关于耦合电子晶格系统中光谱间隙性质的多年生辩论。

The emergent properties of quantum materials, such as symmetry-broken phases and associated spectral gaps, can be effectively manipulated by ultrashort photon pulses. Impulsive optical excitation generally results in a complex non-equilibrium electron and lattice dynamics that involves multiple processes on distinct timescales, and a common conception is that for times shorter than about 100 fs the gap in the electronic spectrum is not seriously affected by lattice vibrations. Here, we directly monitor the photo-induced collapse of the spectral gap in a canonical charge-density-wave material, blue bronze Rb0.3MoO3. We find that ultra-fast (about 60 fs) vibrational disordering due to efficient hot-electron energy dissipation quenches the gap significantly faster than the typical structural bottleneck time corresponding to one half-cycle oscillation (about 315 fs) of the coherent charge-density-wave amplitude mode. This result not only demonstrates the importance of incoherent lattice motion in the photo-induced quenching of electronic order, but also resolves the perennial debate about the nature of the spectral gap in a coupled electron-lattice system.

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