| Literature DB >> 29527441 |
Ashish Kumar1, Christian Schuerings1, Suneel Kumar1, Ajay Kumar1, Venkata Krishnan1.
Abstract
A novel graphitic carbon nitride (Entities:
Keywords: CaTiO3; graphitic carbon nitride (g-C3N4); heterojunction photocatalyst; pollutant degradation
Year: 2018 PMID: 29527441 PMCID: PMC5827633 DOI: 10.3762/bjnano.9.62
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1Powder X-ray diffraction patterns of g-C3N4, CT and CTCN heterojunction.
Figure 2FTIR spectra of g-C3N4, CT and CTCN heterojunction.
Figure 3Thermogravimetric analysis plots of g-C3N4, CT and CTCN heterojunction.
Figure 4SEM images of (a, b) g-C3N4 sheets, (c, d) CT flakes and (e, f) CTCN heterojunctions.
Figure 5TEM images of (a, b) g-C3N4 nanosheets, (c, d) CT flakes and (e, f) CTCN heterojunction.
Figure 6(a) UV–visible diffuse reflectance spectroscopy (DRS) spectra for g-C3N4, CT and CTCN heterojunction; Plot of transformed Kubelka–Munk function vs energy for (b) g-C3N4, (c) CT and (d) CTCN heterojunction.
Figure 7Photoluminescence spectra of g-C3N4, CT and CTCN heterojunction.
Figure 8Nitrogen adsorption–desorption curves for (a) g-C3N4 (b) CT and (c) CTCN heterojunction; BET surface area plots for (d) g-C3N4 (e) CT and (f) CTCN heterojunction.
Figure 9Time-dependent absorption spectra of RhB degradation with the CTCN heterojunction under (a) UV light, (b) visible light and (c) sunlight irradiation; degradation percentage plots of RhB with different samples under (d) UV light, (e) visible light and (f) sunlight irradiation after 120 min of irradiation.
Figure 10Kinetic curves obtained by applying (a, b, c) pseudo-first-order and (d, e, f) the modified Freundlich model for RhB degradation with different photocatalysts under (a, d) UV light, (b, e) visible light and (c, f) sunlight irradiation.
Figure 11Time-dependent absorption spectra of BPA degradation under sunlight irradiation (a) pure BPA (without catalyst) and (b) using CTCN heterojunction.
Figure 12(a) Photocatalyst reusability up to three cycles and (b) powder XRD pattern of a CTCN heterojunction before and after the third cycle.
Figure 13Plausible mechanism of degradation of pollutants under sunlight irradiation using the CTCN heterojunction photocatalyst.
Figure 14Effect of scavengers on the photocatalytic degradation of RhB using the CTCN heterojunction photocatalyst under natural sunlight illumination.