| Literature DB >> 28306288 |
Yang-Yang Lv1, Xiao Li2, Bin-Bin Zhang1, W Y Deng2, Shu-Hua Yao1, Y B Chen2, Jian Zhou1, Shan-Tao Zhang1, Ming-Hui Lu1, Lei Zhang3, Mingliang Tian4,3, L Sheng2,4, Yan-Feng Chen1,4.
Abstract
The asymmetric electron dispersion in type-II Weyl semimetal theoretically hosts anisotropic transport properties. Here, we observe the significant anisotropic Adler-Bell-Jackiw (ABJ) anomaly in the Fermi-level delicately adjusted WTe_{1.98} crystals. Quantitatively, C_{W}, a coefficient representing the intensity of the ABJ anomaly along the a and b axis of WTe_{1.98} are 0.030 and 0.051 T^{-2} at 2 K, respectively. We found that the temperature-sensitive ABJ anomaly is attributed to a topological phase transition from a type-II Weyl semimetal to a trivial semimetal, which is verified by a first-principles calculation using experimentally determined lattice parameters at different temperatures. Theoretical electrical transport study reveals that the observation of an anisotropic ABJ along both the a and b axes in WTe_{1.98} is attributed to electrical transport in the quasiclassical regime. Our work may suggest that electron-doped WTe_{2} is an ideal playground to explore the novel properties in type-II Weyl semimetals.Entities:
Year: 2017 PMID: 28306288 DOI: 10.1103/PhysRevLett.118.096603
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161