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Time-reversal symmetry breaking type-II Weyl state in YbMnBi2

机译:YBMNBI2中的时间逆转对称断裂II型Weyl状态

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Spectroscopic detection of Dirac and Weyl fermions in real materials is vital for both, promising applications and fundamental bridge between high-energy and condensed-matter physics. While the presence of Dirac and noncentrosymmetric Weyl fermions is well established in many materials, the magnetic Weyl semimetals still escape direct experimental detection. In order to find a time-reversal symmetry breaking Weyl state we design two materials and present here experimental and theoretical evidence of realization of such a state in one of them, YbMnBisub2/sub. We model the time-reversal symmetry breaking observed by magnetization and magneto-optical microscopy measurements by canted antiferromagnetism and find a number of Weyl points. Using angle-resolved photoemission, we directly observe two pairs of Weyl points connected by the Fermi arcs. Our results not only provide a fundamental link between the two areas of physics, but also demonstrate the practical way to design novel materials with exotic properties.
机译:真实材料中Dirac和Weyl Comimons的光谱检测对于高能和凝聚物物理学之间的有前途的应用和基本桥梁至关重要。虽然在许多材料中确实很好地建立了狄拉克和非群体微米氏菌属的存在,但磁性刀髓半型仍然逃逸直接实验检测。为了找到一个时间反转对称的威尔武器,我们设计了两种材料,并在这里展示了在其中一个中实现这种状态的实验和理论证据,YBMNBI 2 。我们通过倾斜的反铁磁性测量磁化和磁光显微镜测量观察的时间反转对称断裂,发现许多Weyl点。使用角度解析的光曝光,我们直接观察由Fermi弧连接的两对Weyl点。我们的结果不仅提供了两个物理领域之间的基本环节,还展示了设计具有异国特性的新材料的实用方法。

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