| Literature DB >> 29941889 |
Yanpeng Liu1,2, J N B Rodrigues2,3, Yong Zheng Luo3, Linjun Li1,2, Alexandra Carvalho2,3, Ming Yang2,3,4, Evan Laksono2,3, Junpeng Lu2,3, Yang Bao1,2, Hai Xu1,2, Sherman J R Tan5, Zhizhan Qiu5, Chorng Haur Sow2,3, Yuan Ping Feng2,3, A H Castro Neto2,3, Shaffique Adam6,7,8, Jiong Lu9,10, Kian Ping Loh11,12.
Abstract
Spatially tailored pseudo-magnetic fields (PMFs) can give rise to pseudo-Landau levels and the valley Hall effect in graphene. At an experimental level, it is highly challenging to create the specific strain texture that can generate PMFs over large areas. Here, we report that superposing graphene on multilayer black phosphorus creates shear-strained superlattices that generate a PMF over an entire graphene-black phosphorus heterostructure with edge size of tens of micrometres. The PMF is intertwined with the spatial period of the moiré pattern, and its spatial distribution and intensity can be modified by changing the relative orientation of the two materials. We show that the emerging pseudo-Landau levels influence the transport properties of graphene-black phosphorus field-effect transistor devices with Hall bar geometry. The application of an external magnetic field allows us to enhance or reduce the effective field depending on the valley polarization with the prospect of developing a valley filter.Entities:
Year: 2018 PMID: 29941889 DOI: 10.1038/s41565-018-0178-z
Source DB: PubMed Journal: Nat Nanotechnol ISSN: 1748-3387 Impact factor: 39.213