| Literature DB >> 29180775 |
M S Bahramy1,2, O J Clark3, B-J Yang4,5,6, J Feng3,7, L Bawden3, J M Riley3,8, I Marković3,9, F Mazzola3, V Sunko3,9, D Biswas3, S P Cooil10, M Jorge10, J W Wells10, M Leandersson11, T Balasubramanian11, J Fujii12, I Vobornik12, J E Rault13, T K Kim8, M Hoesch8, K Okawa14, M Asakawa14, T Sasagawa14, T Eknapakul15, W Meevasana15,16, P D C King3.
Abstract
Transition-metal dichalcogenides (TMDs) are renowned for their rich and varied bulk properties, while their single-layer variants have become one of the most prominent examples of two-dimensional materials beyond graphene. Their disparate ground states largely depend on transition metal d-electron-derived electronic states, on which the vast majority of attention has been concentrated to date. Here, we focus on the chalcogen-derived states. From density-functional theory calculations together with spin- and angle-resolved photoemission, we find that these generically host a co-existence of type-I and type-II three-dimensional bulk Dirac fermions as well as ladders of topological surface states and surface resonances. We demonstrate how these naturally arise within a single p-orbital manifold as a general consequence of a trigonal crystal field, and as such can be expected across a large number of compounds. Already, we demonstrate their existence in six separate TMDs, opening routes to tune, and ultimately exploit, their topological physics.Entities:
Year: 2017 PMID: 29180775 DOI: 10.1038/nmat5031
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841