| Literature DB >> 29923241 |
Peng Xiao1, Jie Mao1, Ke Ding1, Wenjin Luo2, Weida Hu2, Xiujuan Zhang1, Xiaohong Zhang1, Jiansheng Jie1.
Abstract
Molybdenum disulfide (MoS2 ), a typical 2D metal dichalcogenide (2DMD), has exhibited tremendous potential in optoelectronic device applications, especially in photodetection. However, due to the weak light absorption of planar mono-/multilayers, limited cutoff wavelength edge, and lack of high-quality junctions, most reported MoS2 -based photodetectors show undesirable performance. Here, a structurized 3D heterojunction of RGO-MoS2 /pyramid Si is demonstrated via a simple solution-processing method. Owing to the improved light absorption by the pyramid structure, the narrowed bandgap of the MoS2 by the imperfect crystallinity, and the enhanced charge separation/transportation by the inserted reduced graphene oxide (RGO), the assembled photodetector exhibits excellent performance in terms of a large responsivity of 21.8 A W-1 , extremely high detectivity up to 3.8 × 1015 Jones (Jones = cm Hz1/2 W-1 ) and ultrabroad spectrum response ranging from 350 nm (ultraviolet) to 4.3 µm (midwave infrared). These device parameters represent the best results for MoS2 -based self-driven photodetectors, and the detectivity value sets a new record for the 2DMD-based photodetectors reported thus far. Prospectively, the design of novel 3D heterojunction can be extended to other 2DMDs, opening up the opportunities for a host of high-performance optoelectronic devices.Entities:
Keywords: RGO-MoS2 composite film; pyramid Si; ultra-broadband photodetection; ultrahigh detectivity
Year: 2018 PMID: 29923241 DOI: 10.1002/adma.201801729
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849