| Literature DB >> 26743693 |
Hao Zheng1, Su-Yang Xu1, Guang Bian1, Cheng Guo2, Guoqing Chang3,4, Daniel S Sanchez1, Ilya Belopolski1, Chi-Cheng Lee3,4, Shin-Ming Huang3,4, Xiao Zhang2, Raman Sankar5, Nasser Alidoust1, Tay-Rong Chang1,6, Fan Wu7, Titus Neupert8, Fangcheng Chou5, Horng-Tay Jeng6,9, Nan Yao7, Arun Bansil10, Shuang Jia2,11, Hsin Lin3,4, M Zahid Hasan1.
Abstract
Weyl semimetals may open a new era in condensed matter physics, materials science, and nanotechnology after graphene and topological insulators. We report the first atomic scale view of the surface states of a Weyl semimetal (NbP) using scanning tunneling microscopy/spectroscopy. We observe coherent quantum interference patterns that arise from the scattering of quasiparticles near point defects on the surface. The measurements reveal the surface electronic structure both below and above the chemical potential in both real and reciprocal spaces. Moreover, the interference maps uncover the scattering processes of NbP's exotic surface states. Through comparison between experimental data and theoretical calculations, we further discover that the orbital and/or spin texture of the surface bands may suppress certain scattering channels on NbP. These results provide a comprehensive understanding of electronic properties on Weyl semimetal surfaces.Entities:
Keywords: Weyl semimetal; scanning tunneling microscopy; topological matter
Year: 2016 PMID: 26743693 DOI: 10.1021/acsnano.5b06807
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881