| Literature DB >> 33980949 |
Ayar Al-Zubaidi1, Kenta Kobayashi1, Yosuke Ishii2, Shinji Kawasaki3.
Abstract
We describe the synthesis and visible-light CO2 photoreduction catalytic properties of a three-component composite consisting of AgI, AgIO3, and single-walled carbon nanotubes (SWCNTs). The catalyst is synthesized by immersing SWCNTs encapsulating iodine molecules in AgNO3 aqueous solution, during which neutral iodine (I2) molecules encapsulated in SWCNTs transform disproportionately to I5+ (AgIO3) and I- (AgI), as revealed from the characterization of the composite by Raman spectroscopy, X-ray diffraction, and X-ray photoelectron spectroscopy. In addition, photoirradiation experiments using a solar-simulator (AM1.5G) showed that the obtained three-component composite works as a CO2 photoreduction catalyst under visible light despite the wide band gap of AgIO3, suggesting possible transfer of the visible light-excited electron from AgI via SWCNTs.Entities:
Year: 2021 PMID: 33980949 PMCID: PMC8115251 DOI: 10.1038/s41598-021-89706-2
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic picture of the synthesis procedure of the three-component composite of AgI, AgIO3, and SWCNTs. The photocatalytic mechanism scheme of the composite under irradiation of visible light is also shown.
Figure 2(a) Raman spectra of (i) pristine SWCNTs, (ii) I@SWCNT, (iii) AgI-AgIO3-SWCNT. The inset shows the low wavenumber region of the Raman spectrum of (iii). (b) Ag 3d binding energies and (c) I 3d binding energies on the XPS spectra of AgI-AgIO3-SWCNT. (d) SEM image of AgI-AgIO3-SWCNT. e) XRD pattern of AgI-AgIO3-SWCNT.
Figure 3(a) Time dependence of CO yields over AgI-AgIO3-SWCNT under simulated solar light AM1.5G. (b) CO gas chromatography peaks of the AgI-AgIO3-SWCNT sample with (A) and without (B) UV-cut-filter. Data of pure AgI powder without UV-cut-filter (C) was also show as control experiment. (c) Transparent conductive film of AgI-AgIO3-SWCNT.