| Literature DB >> 25984835 |
Likai Li1, Guo Jun Ye2, Vy Tran3, Ruixiang Fei3, Guorui Chen1, Huichao Wang4, Jian Wang4, Kenji Watanabe5, Takashi Taniguchi5, Li Yang3, Xian Hui Chen2, Yuanbo Zhang1.
Abstract
For decades, two-dimensional electron gases (2DEG) have allowed important experimental discoveries and conceptual developments in condensed-matter physics. When combined with the unique electronic properties of two-dimensional crystals, they allow rich physical phenomena to be probed at the quantum level. Here, we create a 2DEG in black phosphorus--a recently added member of the two-dimensional atomic crystal family--using a gate electric field. The black phosphorus film hosting the 2DEG is placed on a hexagonal boron nitride substrate. The resulting high carrier mobility in the 2DEG allows the observation of quantum oscillations. The temperature and magnetic field dependence of these oscillations yields crucial information about the system, such as cyclotron mass and lifetime of its charge carriers. Our results, coupled with the fact that black phosphorus possesses anisotropic energy bands with a tunable, direct bandgap, distinguish black phosphorus 2DEG as a system with unique electronic and optoelectronic properties.Entities:
Year: 2015 PMID: 25984835 DOI: 10.1038/nnano.2015.91
Source DB: PubMed Journal: Nat Nanotechnol ISSN: 1748-3387 Impact factor: 39.213