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Quantum oscillations from generic surface Fermi arcs and bulk chiral modes in Weyl semimetals

机译:Weyl半金属中通用表面费米弧和体手性模的量子振荡

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摘要

We re-examine the question of quantum oscillations from surface Fermi arcs and chiral modes in Weyl semimetals. By introducing two tools - semiclassical phase-space quantization and a numerical implementation of a layered construction of Weyl semimetals - we discover several important generalizations to previous conclusions that were implicitly tailored to the special case of identical Fermi arcs on top and bottom surfaces. We show that the phase-space quantization picture fixes an ambiguity in the previously utilized energy-time quantization approach and correctly reproduces the numerically calculated quantum oscillations for generic Weyl semimetals with distinctly curved Fermi arcs on the two surfaces. Based on these methods, we identify a ‘magic’ magnetic-field angle where quantum oscillations become independent of sample thickness, with striking experimental implications. We also analyze the stability of these quantum oscillations to disorder, and show that the high-field oscillations are expected to persist in samples whose thickness parametrically exceeds the quantum mean free path.
机译:我们重新审查了Weyl半金属表面费米弧和手性模的量子振荡问题。通过引入两种工具-半经典相空间量化和Weyl半金属分层构造的数值实现-我们发现了对先前结论的几个重要概括,这些结论隐含地适合于顶部和底部表面上相同费米弧的特殊情况。我们表明,相空间量化图片解决了以前使用的能量时间量化方法中的歧义,并正确地再现了在两个表面上均具有明显弯曲的费米弧的通用Weyl半金属的数值计算量子振动。基于这些方法,我们确定了一个“魔术”磁场角,其中量子振荡与样品厚度无关,具有明显的实验意义。我们还分析了这些量子振荡对无序的稳定性,并表明高场振荡有望在厚度参数上超过量子平均自由程的样本中持续存在。

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