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Beilstein J. Nanotechnol. 2026, 17, 622–634, doi:10.3762/bjnano.17.43
Figure 1: Structure of rhodamine B.
Figure 2: SEM micrograph with corresponding EDS elemental mapping of the Ag@TiO2 200p plate. (a) Surface afte...
Figure 3: SEM micrograph with corresponding EDS elemental mapping of the Ag@TiO2 2000p plate. (a) Surface aft...
Figure 4: (a, d) Cross-sectional TEM micrographs, (b, e) HRTEM images, and (c, f) SAED diffraction patterns o...
Figure 5: STEM-HAADF images and STEM-EDS compositional maps of titanium, oxygen, and silver of synthesized (a...
Figure 6: Particle size distribution of Ag@TiO2 nanoparticles determined by dynamic light scattering (DLS). (...
Figure 7: (a) UV–vis absorbance spectra and (b) bandgap energy of TiO2 and Ag@TiO2 NPs samples.
Figure 8: Photocatalytic degradation of RhB with (a) Ag@TiO2 200p NPs and (b) Ag@TiO2 2000p NPs, (c) photocat...
Figure 9: Schematic of the experimental setup.
Beilstein J. Nanotechnol. 2022, 13, 666–674, doi:10.3762/bjnano.13.58
Figure 1: The process of cascade centrifugation.
Figure 2: Deposited graphene films at centrifugation rates of 3, 4, and 5 krpm (824g, 1465g, and 2289g, respe...
Figure 3: Dark-field microscopic images of films produced from (a) the initial graphene dispersion and from f...
Figure 4: Scanning electron micrographs of films produced from the (a) initial graphene dispersion and from f...
Figure 5: UV–vis spectra of deposited graphene films at different centrifugation rates, redispersed in specif...
Figure 6: Dependence of the optical transparency on the electrical resistance of graphene films on a semi-log...