The Dirac semimetal phase found in Cd3As2 is protected by a C4 rotational symmetry derived from a corkscrew arrangement of systematic Cd vacancies in its complicated crystal structure. It is therefore surprising that no microscopic observation, direct or indirect, of these systematic vacancies has so far been described. To this end, we revisit the cleaved (112) surface of Cd3As2 using a combined approach of scanning tunneling microscopy and \textit{ab initio} calculations. We determine the exact position of the (112) plane at which Cd3As2 naturally cleaves, and describe in detail a structural periodicity found at the reconstructed surface, consistent with that expected to arise from the systematic Cd vacancies. This reconciles the current state of microscopic surface observations with those of crystallographic and theoretical models, and demonstrates that this vacancy superstructure, central to the preservation of the Dirac semimetal phase, survives the cleavage process and retains order at the surface.
@article{arxiv.1703.08909,
title = {Observation of surface superstructure induced by systematic vacancies in the topological Dirac semimetal Cd$_{3}$As$_{2}$},
author = {Christopher J. Butler and Yi Tseng and Cheng-Rong Hsing and Yu-Mi Wu and Raman Sankar and Mei-Fang Wang and Ching-Ming Wei and Fang-Cheng Chou and Minn-Tsong Lin},
journal= {arXiv preprint arXiv:1703.08909},
year = {2017}
}
Comments
Supplemental Material included. 16 pages, 7 figures