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Theory of Floquet band formation and local pseudospin textures in pump-probe photoemission of graphene

机译:石墨烯泵浦探针光发射中的浮球能带形成理论和局部伪自旋织构

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摘要

Ultrafast materials science promises optical control of physical properties of solids. Continuous-wave circularly polarized laser driving was predicted to induce a light-matter coupled state with an energy gap and a quantum Hall effect, coined Floquet topological insulator. Whereas the envisioned Floquet topological insulator requires high-frequency pumping to obtain well-separated Floquet bands, a follow-up question regards the creation of Floquet-like states in graphene with realistic low-frequency laser pulses. Here we predict that short optical pulses attainable in experiments can lead to local spectral gaps and novel pseudospin textures in graphene. Pump-probe photoemission spectroscopy can track these states by measuring sizeable energy gaps and Floquet band formation on femtosecond time scales. Analysing band crossings and pseudospin textures near the Dirac points, we identify new states with optically induced nontrivial changes of sublattice mixing that leads to Berry curvature corrections of electrical transport and magnetization.
机译:超快材料科学承诺对固体物理性质进行光学控制。预测连续波圆偏振激光驱动会产生具有能隙和量子霍尔效应的光-质耦合状态,这就是所谓的Floquet拓扑绝缘体。设想的Floquet拓扑绝缘体需要高频泵浦以获得良好分离的Floquet频带,而后续问题则涉及使用实际的低频激光脉冲在石墨烯中创建Floquet状态。在这里,我们预测在实验中可获得的短光脉冲会导致石墨烯中的局部光谱间隙和新型伪自旋纹理。泵浦探针光发射光谱可以通过在飞秒级的时间尺度上测量可观的能隙和浮球带形成来跟踪这些状态。分析Dirac点附近的带交叉和伪自旋纹理,我们确定了亚晶格混合的光诱导非平凡变化的新状态,这些变化导致电传输和磁化强度的Berry曲率校正。

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