| Literature DB >> 29517832 |
Lei Gao1,2, Jia-Tao Sun1,2, Jian-Chen Lu1,2, Hang Li1,2, Kai Qian1,2, Shuai Zhang1,2, Yu-Yang Zhang1,2, Tian Qian1,2, Hong Ding1,2, Xiao Lin1,2, Shixuan Du1,2, Hong-Jun Gao1,2.
Abstract
2D transition metal chalcogenides have attracted tremendous attention due to their novel properties and potential applications. Although 2D transition metal dichalcogenides are easily fabricated due to their layer-stacked bulk phase, 2D transition metal monochalcogenides are difficult to obtain. Recently, a single atomic layer transition metal monochalcogenide (CuSe) with an intrinsic pattern of nanoscale triangular holes is fabricated on Cu(111). The first-principles calculations show that free-standing monolayer CuSe with holes is not stable, while hole-free CuSe is endowed with the Dirac nodal line fermion (DNLF), protected by mirror reflection symmetry. This very rare DNLF state is evidenced by topologically nontrivial edge states situated inside the spin-orbit coupling gaps. Motivated by the promising properties of hole-free honeycomb CuSe, monolayer CuSe is fabricated on Cu(111) surfaces by molecular beam epitaxy and confirmed success with high resolution scanning tunneling microscopy. The good agreement of angle resolved photoemission spectra with the calculated band structures of CuSe/Cu(111) demonstrates that the sample is monolayer CuSe with a honeycomb lattice. These results suggest that the honeycomb monolayer transition metal monochalcogenide can be a new platform to study 2D DNLFs.Entities:
Keywords: 2D Dirac nodal line fermion; first-principles calculation; monolayer CuSe
Year: 2018 PMID: 29517832 DOI: 10.1002/adma.201707055
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849