| Literature DB >> 30515884 |
Zhi-Qiang Shi1, Huiping Li2,3, Qian-Qian Yuan1, Ye-Heng Song1, Yang-Yang Lv4, Wei Shi1, Zhen-Yu Jia1, Libo Gao1, Yan-Bin Chen1, Wenguang Zhu2,3, Shao-Chun Li1,5.
Abstract
Atomically thin 2D crystals have gained tremendous attention owing to their potential impact on future electronics technologies, as well as the exotic phenomena emerging in these materials. Monolayers of α-phase Sb (α-antimonene), which shares the same puckered structure as black phosphorous, are predicted to be stable with precious properties. However, the experimental realization still remains challenging. Here, high-quality monolayerα-antimonene is successfully grown, with the thickness finely controlled. The α-antimonene exhibits great stability upon exposure to air. Combining scanning tunneling microscopy, density functional theory calculations, and transport measurements, it is found that the electron band crossing the Fermi level exhibits a linear dispersion with a fairly small effective mass, and thus a good electrical conductivity. All of these properties make the α-antimonene promising for future electronic applications.Entities:
Keywords: density functional theory; molecular beam epitaxy; monolayer Sb; puckered honeycomb structure; scanning tunneling microscopy
Year: 2018 PMID: 30515884 DOI: 10.1002/adma.201806130
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849