| Literature DB >> 26501249 |
Yusen Liao1, Zhaoning Hu2, Quan Gu3, Can Xue4.
Abstract
Amine-functionalized ZnO nanosheets were prepared through a one-step hydrothermal method by using monoethanolamine, which has a hydroxyl group, for covalent attachment on ZnO and a primary amine group to supply the amine-functionalization. We demonstrate that the terminal amine groups on ZnO surfaces substantially increase the capability of CO₂ capture via chemisorption, resulting in effective CO₂ activation. As a result, the photogenerated electrons from excited ZnO can more readily reduce the surface-activated CO₂, which thereby enhances the activity for photocatalytic CO₂ reduction.Entities:
Keywords: CO2 reduction; photocatalysis; solar fuels; zinc oxide
Mesh:
Substances:
Year: 2015 PMID: 26501249 PMCID: PMC6332338 DOI: 10.3390/molecules201018847
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1(a) XRD patterns of MEA–ZnO and clean ZnO. Both samples can be indexed as wurtzite ZnO; (b) UV-Vis spectra of MEA–ZnO and clean ZnO.
Figure 2(a) SEM images of MEA–ZnO; (b) SEM image of clean ZnO; (c) TEM image of MEA–ZnO nanosheets; (d) HRTEM image of a representative MEA–ZnO nanosheet.
Figure 3FT-IR spectra of clean ZnO, MEA–ZnO, and the pure MEA molecule.
Figure 4CO2 adsorption isotherms of MEA–ZnO and clean ZnO.
Figure 5The amount of generated (a) CH4 and (b) CO as a function of irradiation time over the sample of MEA–ZnO or clean ZnO. Control experiments without light irradiation (control 1) or without CO2 (control 2) showed no generation of CO and CH4.
Figure 6The cycling test of CO2 photoreduction over 12 h by using the MEA–ZnO sample.
Figure 7Schematic illustration of adsorption and photoreduction of CO2 on the MEA-functionalized ZnO nanosheet.