| Literature DB >> 26991191 |
Su-Yang Xu1, Ilya Belopolski1, Daniel S Sanchez1, Madhab Neupane1,2,3, Guoqing Chang4,5, Koichiro Yaji6, Zhujun Yuan7, Chenglong Zhang7, Kenta Kuroda6, Guang Bian1, Cheng Guo7, Hong Lu7, Tay-Rong Chang8, Nasser Alidoust1, Hao Zheng1, Chi-Cheng Lee4,5, Shin-Ming Huang4,5, Chuang-Han Hsu4,5, Horng-Tay Jeng8,9, Arun Bansil10, Titus Neupert11, Fumio Komori6, Takeshi Kondo6, Shik Shin6, Hsin Lin4,5, Shuang Jia7,12, M Zahid Hasan1.
Abstract
A Weyl semimetal is a new state of matter that hosts Weyl fermions as quasiparticle excitations. The Weyl fermions at zero energy correspond to points of bulk-band degeneracy, called Weyl nodes, which are separated in momentum space and are connected only through the crystal's boundary by an exotic Fermi arc surface state. We experimentally measure the spin polarization of the Fermi arcs in the first experimentally discovered Weyl semimetal TaAs. Our spin data, for the first time, reveal that the Fermi arcs' spin-polarization magnitude is as large as 80% and lies completely in the plane of the surface. Moreover, we demonstrate that the chirality of the Weyl nodes in TaAs cannot be inferred by the spin texture of the Fermi arcs. The observed nondegenerate property of the Fermi arcs is important for establishing its exact topological nature, which reveals that spins on the arc form a novel type of 2D matter. Additionally, the nearly full spin polarization we observed (∼80%) may be useful in spintronic applications.Year: 2016 PMID: 26991191 DOI: 10.1103/PhysRevLett.116.096801
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161