| Literature DB >> 31373301 |
Haocong Dong1,2, Junzhu Li2,3, Mingguang Chen3, Hongwei Wang2,4, Xiaochuan Jiang2,5, Yongguang Xiao6, Bo Tian7,8, Xixiang Zhang9.
Abstract
High-throughput production of highly efficient photocatalysts for hydrogen evolution remains a considerable challenge for materials scientists. Here, we produced extremely uniform high-quality graphene and molybdenum disulfide (MoS2) nanoplatelets through the electrochemical-assisted liquid-phase exfoliation, out of which we subsequently fabricated MoS2/graphene van der Waals heterostructures. Ultimately, zinc oxide (ZnO) nanoparticles were deposited into these two-dimensional heterostructures to produce an artificial ZnO/MoS2/graphene nanocomposite. This new composite experimentally exhibited an excellent photocatalytic efficiency in hydrogen evolution under the sunlight illumination ( λ > 400   n m ), owing to the extremely high electron mobilities in graphene nanoplatelets and the significant visible-light absorptions of MoS2. Moreover, due to the synergistic effects in MoS2 and graphene, the lifetime of excited carriers increased dramatically, which considerably improved the photocatalytic efficiency of the ZnO/MoS2/graphene heterostructure. We conclude that the novel artificial heterostructure presented here shows great potential for the high-efficient photocatalytic hydrogen generation and the high throughput production of visible-light photocatalysts for industrial applications.Entities:
Keywords: MoS2; ZnO; graphene; high-throughput production; photocatalyst
Year: 2019 PMID: 31373301 PMCID: PMC6678946 DOI: 10.3390/ma12142233
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Schematics of manufacture processes of zinc oxide (ZnO)/molybdenum disulfide (MoS2)/graphene heterostructures.
Figure 2Morphology characteristics of the different samples. (a) SEM images of graphene nanoplatelets; (b) SEM images of MoS2 nanoplatelets; (c) SEM images of ZnO nanoparticles; (d) SEM images of MoS2/graphene; (e) SEM images of ZnO/MoS2, (f) SEM images of ZnO/MoS2/graphene; (g) energy-dispersive X-ray spectroscopy (EDS) of MoS2/graphene heterostructures; (h) EDS of ZnO/MoS2 heterostructures; (i) EDS of ZnO/MoS2/graphene ternary heterostructures.
Figure 3Structural characterization of the various samples. (a) XRD measurements of each component; (b) X-ray photoelectron spectrometer (XPS) data of pure ZnO and ZnO/MoS2/graphene heterostructures; (c) Raman characterizations of each component; (d) photoluminescence (PL) spectra of the ZnO and ZnO/MoS2/graphene heterostructures.
Figure 4Schematics of heterostructures and electron transfer in photocatalytic processes. (a) 3D view of the ZnO/MoS2/graphene heterostructures; (b) energy diagram and generated electrons transfer during visible-light illumination.
Figure 5Photocatalytic efficiency measurements. (a) Diagram of hydrogen generation rates of ZnO, ZnO/graphene, ZnO/MoS2, and ZnO/MoS2/graphene catalysts; (b) hydrogen generation rates diagram of various componential ZnO/MoS2/graphene photocatalysts.