论文标题

ZRSIS拓扑结节线半学中的光诱导的带重归其化效应

Photoinduced Band Renormalization Effects in ZrSiS Topological Nodal-line Semimetal

论文作者

Biswas, Somnath, Petrides, Ioannis, Kirby, Robert J., Oberg, Catrina, Klemenz, Sebastian, Weinberg, Caroline, Ferrenti, Austin, Narang, Prineha, Schoop, Leslie, Scholes, Gregory D.

论文摘要

均衡效应为探测和理解拓扑材料的潜在物理学提供了优雅的途径。特别是使用超快速光脉冲创建物质的外来状态,已经显示出有望控制电子带结构特性。最近感兴趣的是狄拉克和Weyl半法的带状重归其化,因为它通过增强有效质量或谐振能量的转移导致了直接的物理可观察力。在这里,我们提供了在拓扑结节线ZRSIS中电子带结构的光诱导重新归一化的实验和理论特征。具体而言,我们展示了在飞秒光学激发下的瞬时反射率光谱的变化是如何通过重新构成电子动能的不平衡效应引起的。我们将观察到的光谱变化与有效质量的增强和谐振频率的红移相关联,这是泵场强度的函数。最后,我们表明反射率的瞬时松弛动力学主要是电子效应,具有可忽略的语音贡献。我们的研究介绍了使用Ultrashort脉冲在ZRSI中的电子性质的修改,并证明了这种方法在通过全光途径中创建拓扑量子量的光诱导相的潜力。

Out-of-equilibrium effects provide an elegant pathway to probing and understanding the underlying physics of topological materials. Creating exotic states of matter using ultrafast optical pulses in particular has shown promise towards controlling electronic band structure properties. Of recent interest is band renormalization in Dirac and Weyl semimetals as it leads to direct physical observables through the enhancement of the effective mass, or, in the shift of resonant energies. Here we provide experimental and theoretical signatures of photo-induced renormalization of the electronic band structure in a topological nodal line semimetal ZrSiS. Specifically, we show how the change of the transient reflectivity spectra under femtosecond optical excitations is induced by out-of-equilibrium effects that renormalize the kinetic energy of electrons. We associate the observed spectral shift to an enhancement of the effective mass and to a red-shift of the resonant frequency as a function of pump field strength. Finally, we show that the transient relaxation dynamics of the reflectivity is primarily an electronic effect with negligible phononic contribution. Our study presents the modifications of electronic properties in ZrSiS using ultrashort pulses, and demonstrates the potential of this approach in creating photo-induced phases in topological quantum mater through an all-optical route.

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