| Literature DB >> 25977664 |
Shenghui Guo1, Jianxing Bao1, Tu Hu1, Libo Zhang1, Li Yang1, Jinhui Peng1, Caiyi Jiang1.
Abstract
The novel porous Ag2CO3 nanorods were facilely synthesized via a one-pot aqueous solution reaction at room temperature. The crystEntities:
Keywords: Crystal growth; Photocatalysis; Porous nanorods; Silver carbonate
Year: 2015 PMID: 25977664 PMCID: PMC4411329 DOI: 10.1186/s11671-015-0892-5
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1SEM, TEM images, and EDS pattern. (A, B) Low- and high-magnified SEM images. (C) TEM images (inset scale bar = 20 nm). (D) EDS pattern of as-prepared Ag2CO3 samples.
Figure 2Nitrogen adsorption-desorption isotherm. Nitrogen adsorption-desorption isotherms of as-prepared porous Ag2CO3 nanorods. Insets: the pore size distribution of the crystals.
Figure 3XRD patterns. XRD patterns of Ag2CO3 products prepared (a) with PVP-K90 as the dispersing agent, (b) with PVP-K30 as the dispersing agent, and (c) by one-time injection of the NaHCO3 solution.
Figure 4SEM images and schematic illustration of growth process. (A) The schematic illustration of the possible growth process from Ag2CO3 particles to porous Ag2CO3 nanorods. (B) SEM images of Ag2CO3 products prepared with PVP-K30 as the dispersing agent (inset scale bar = 100 nm). (C) SEM images of Ag2CO3 products prepared by one-time injection of the NaHCO3 solution (inset scale bar = 100 nm).
Figure 5Photocatalytic degradation and stability. (A) Comparison of visible-light-driven photocatalytic degradation of RhB with the different samples and adsorption in the dark over porous Ag2CO3 nanorods. (B) Plots of ln(C 0/C) vs. irradiation time for the degradation of RhB under visible light. (C) Comparison of photocatalytic stability of the porous Ag2CO3 nanorods and 0.01 M NaHCO3 aqueous solution in four-cycle reactions.
Figure 6Schematic of possible photocatalytic mechanism for Ag2CO3.
Figure 7XPS spectra. (A) XPS survey spectra and (B) high-resolution XPS spectra of Ag 3d of Ag2CO3. Curves (a-c) are XPS results of Ag2CO3 before and after photodegradation experiments under visible-light irradiation.
Figure 8Photocatalytic degradation efficiencies and UV-vis spectral changes. (A) The visible-light photocatalytic activity of porous Ag2CO3 nanorods in the presence of NaHCO3 with different concentrations as follows: 0 M (b), 0.1 M (c), 0.001 M (d), 0.01 M (e), and 0.01 M NaHCO3 in the absence of photocatalysts (a). (B) UV-vis absorbance spectral changes of RhB aqueous in as-prepared of porous Ag2CO3 nanorods with 0.01 M NaHCO3 as a function of irradiation time.