1] Joseph Henry Laboratory, Department of Physics, Princeton University, Princeton, New Jersey 08544, USA [2].
1] Center for Condensed Matter Sciences, National Taiwan University, Taipei 10617, Taiwan [2].
Nat Commun. 2014 May 7;5:3786. doi: 10.1038/ncomms4786.
Symmetry-broken three-dimensional (3D) topological Dirac semimetal systems with strong spin-orbit coupling can host many exotic Hall-like phenomena and Weyl fermion quantum transport. Here, using high-resolution angle-resolved photoemission spectroscopy, we performed systematic electronic structure studies on Cd3As2, which has been predicted to be the parent material, from which many unusual topological phases can be derived. We observe a highly linear bulk band crossing to form a 3D dispersive Dirac cone projected at the Brillouin zone centre by studying the (001)-cleaved surface. Remarkably, an unusually high in-plane Fermi velocity up to 1.5×10(6) ms(-1) is observed in our samples, where the mobility is known up to 40,000 cm2 V(-1) s(-1), suggesting that Cd3As2 can be a promising candidate as an anisotropic-hypercone (three-dimensional) high spin-orbit analogue of 3D graphene. Our discovery of the Dirac-like bulk topological semimetal phase in Cd3As2 opens the door for exploring higher dimensional spin-orbit Dirac physics in a real material.
具有强自旋轨道耦合的非对称三维(3D)拓扑狄拉克半金属系统可以承载许多奇异的类霍尔现象和外尔费米子量子输运。在这里,我们使用高分辨率角分辨光发射谱,对 Cd3As2 进行了系统的电子结构研究,Cd3As2 被预测为许多不寻常拓扑相的母体材料。通过研究(001)-劈开的表面,我们观察到高度线性的体带交叉,形成了在布里渊区中心投影的 3D 色散狄拉克锥。值得注意的是,在我们的样品中观察到高达 1.5×10(6) ms(-1)的异常高的面内费米速度,其中迁移率高达 40,000 cm2 V(-1) s(-1),这表明 Cd3As2 可能是各向异性超锥(三维)高自旋轨道类似物 3D 石墨烯的有前途的候选材料。我们在 Cd3As2 中发现的类狄拉克体拓扑半金属相为探索真实材料中更高维自旋轨道狄拉克物理打开了大门。