| Literature DB >> 31825536 |
Fangfang Cui1, Xiaoxu Zhao2, Junjie Xu1, Bin Tang3, Qiuyu Shang1, Jianping Shi1, Yahuan Huan1, Jianhui Liao3, Qing Chen3, Yanglong Hou1, Qing Zhang1, Stephen J Pennycook2, Yanfeng Zhang1.
Abstract
2D magnetic materials have attracted intense attention as ideal platforms for constructing multifunctional electronic and spintronic devices. However, most of the reported 2D magnetic materials are mainly achieved by the mechanical exfoliation route. The direct synthesis of such materials is still rarely reported, especially toward thickness-controlled synthesis down to the 2D limit. Herein, the thickness-tunable synthesis of nanothick rhombohedral Cr2 S3 flakes (from ≈1.9 nm to tens of nanometers) on a chemically inert mica substrate via a facile chemical vapor deposition route is demonstrated. This is accomplished by an accurate control of the feeding rate of the Cr precursor and the growth temperature. Furthermore, it is revealed that the conduction behavior of the nanothick Cr2 S3 is variable with increasing thickness (from 2.6 to 4.8 nm and >7 nm) from p-type to ambipolar and then to n-type. Hereby, this work can shed light on the scalable synthesis, transport, and magnetic properties explorations of 2D magnetic materials.Entities:
Keywords: Cr2S3; chemical vapor deposition; conduction type transition; controlled growth
Year: 2019 PMID: 31825536 DOI: 10.1002/adma.201905896
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849