| Literature DB >> 29062043 |
Zihong Fan1, Tianhui Wu2, Xuan Xu3.
Abstract
In this paper a novel visible light-driven ternary compound photocatalyst (βEntities:
Year: 2017 PMID: 29062043 PMCID: PMC5653848 DOI: 10.1038/s41598-017-14018-3
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The XRD patterns of β-NaYF4:Ho3+, β-NaYF4:Ho3+@TiO2, and β-NaYF4:Ho3+@TiO2-rGO.
Figure 2SEM images of (a,b) β-NaYF4:Ho3+, (c) β-NaYF4:Ho3+@TiO2, and (e,f) β-NaYF4:Ho3+@TiO2–rGO, (d) TEM images ofβ-NaYF4:Ho3+@TiO2.
Figure 3(a) SEM images ofβ-NaYF4:Ho3+@TiO2–rGO, (b–h) SEM elemental distribution mappings of Y, F, Na, Ho, Ti, O, and C. (i) EDS spectrum of β-NaYF4:Ho3+@TiO2–rGO.
Figure 4High-resolution XPS analyses of the β-NaYF4:Ho3+@TiO2-rGO microcrystals: (a) Wide spectrum, (b) Ti 2p, (c) O 1 s, (d) F 1 s, (e)C 1 s, (f) Ho 4d.
Figure 5FTIR spectra of GO, TiO2, β-NaYF4:Ho3+, β-NaYF4:Ho3+@TiO2, and β-NaYF4:Ho3+@TiO2-rGO, respectively.
Figure 6(a) The UV-Vis absorbance spectra of the P25, β-NaYF4, β-NaYF4:Ho3+, β-NaYF4:Ho3+@TiO, β-NaYF4:Ho3+@TiO2-rGO, GO, and the RGO prepared by hydrothermal method under the same conditions asβ-NaYF4:Ho3+@TiO2-rGO; inset: the enlarged spectra ranging from 400 nm to 500 nm. (b) The plot for bandgap energy Eg. (c) VB XPS; inset: schematic illustration of the band gap structures. (d) Photoluminescence (PL) spectra of samples under 450 nm excitations.
Figure 7Raman spectra of NaYF4:Ho3+, NaYF4:Ho3+@TiO2, and NaYF4:Ho3+@TiO2-rGO composite.
Figure 8Transient photocurrent densities of the as-prepared samples.
Figure 9(a) Time-dependent UV-Vis absorption spectroscopy of an RhB solution degraded by β-NaYF4:Ho3+@TiO2-rGO (b) Time-dependent plot of the photodegradation of a RhB solution by different catalysts upon irradiation by a Xe lamp (500 W) with a UV cutoff filter (λ > 400 nm). (c) Cyclic run of the photocatalytic degradation of RhB using β-NaYF4:Ho3+@TiO2-rGO.
Figure 10N2 adsorption-desorption isotherms (a) and pore size distribution curves (b) of β-NaYF4:Ho3+, β-NaYF4:Ho3+@TiO2, and β-NaYF4:Ho3+@TiO2-rGO.
Characteristics obtained from nitrogen desorption isotherms.
| Sample | Mean pore size(nm) | Pore volume(cm3g−1) | Surface area(m2g−1) |
|---|---|---|---|
|
| 3.5123 | 0.001069 | 0.8938 |
|
| 3.5915 | 0.016921 | 8.3884 |
|
| 3.9655 | 0.032805 | 16.7511 |
Figure 11DMPO spin-trapping ESR spectra of β-NaYF4:Ho3+@TiO2-rGO in methanol dispersion for OH (a) and in aqueous dispersion for·O2− (b); (c) superoxide radical, (d) hydroxyl radicals of TiO2, β-NaYF4:Ho3+, and β-NaYF4:Ho3+@TiO2-rGO after four min of Vis light irradiation.
Figure 123D fluorescence spectra of NaYF4:Ho3+ (a), NaYF4:Ho3+@TiO2 (b), and NaYF4:Ho3+@TiO2-rGO composite (c).
Figure 13Photocatalytic reaction mechanism of β-NaYF4:Ho3+@TiO2-rGO.