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Creating stable Floquet-Weyl semimetals by laser-driving of 3D Dirac materials

机译:通过激光驱动3D Dirac材料来创建稳定的Floquet-Weyl半金属

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摘要

Tuning and stabilizing topological states, such as Weyl semimetals, Dirac semimetals or topological insulators, is emerging as one of the major topics in materials science. Periodic driving of many-body systems offers a platform to design Floquet states of matter with tunable electronic properties on ultrafast timescales. Here we show by first principles calculations how femtosecond laser pulses with circularly polarized light can be used to switch between Weyl semimetal, Dirac semimetal and topological insulator states in a prototypical three-dimensional (3D) Dirac material, Na3Bi. Our findings are general and apply to any 3D Dirac semimetal. We discuss the concept of time-dependent bands and steering of Floquet-Weyl points and demonstrate how light can enhance topological protection against lattice perturbations. This work has potential practical implications for the ultrafast switching of materials properties, such as optical band gaps or anomalous magnetoresistance.
机译:调整和稳定拓扑状态,例如Weyl半金属,Dirac半金属或拓扑绝缘体,已成为材料科学的主要主题之一。多体系统的定期驱动提供了一个平台,可以在超快的时间尺度上设计具有可调谐电子特性的浮子状态。在这里,我们以第一原理计算为例,说明了如何在原型三维(3D)Dirac材料Na3Bi中使用飞秒激光脉冲和圆偏振光在Weyl半金属,Dirac半金属和拓扑绝缘体状态之间进行切换。我们的发现是一般性的,适用于任何3D Dirac半金属。我们讨论了随时间变化的频带和Floquet-Weyl点的控制概念,并演示了光如何增强拓扑保护以防止晶格扰动。这项工作对于超快切换材料特性(如光学带隙或异常磁阻)具有潜在的实际意义。

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