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Beilstein J. Nanotechnol. 2020, 11, 1822–1833, doi:10.3762/bjnano.11.164
Figure 1: X-ray diffractograms when using different complexing agents.
Figure 2: X-ray diffractograms when using different solvents.
Figure 3: (a) X-ray diffractograms of BiFeO3-0, x% samples with equimolar, 2%, 3% and 5% of bismuth excess, c...
Figure 4: XRD pattern of 5.5 nm BiFeO3 NP.
Figure 5: TEM of BiFeO3 samples (a) nanocast 5.5 nm BiFeO3 particles (b) particle size analysis (c) particles...
Figure 6: Absorbance spectra and Tauc plot (inset) for 5.5 nm BiFeO3 nanoparticles.
Figure 7: Photocatalytic degradation of RhB as a function of irradiation time under visible light using diffe...
Figure 8: Kinetics of the photocatalytic degradation of RhB using different catalysts.
Figure 9: Effect of catalyst concentration on the degradation of RhB.
Figure 10: Evaluation of photocatalytic stability and reusability of 5.5 nm BiFeO3 NP in a total of five cycle...
Figure 11: Photocatalytic degradation of RhB using 5.5 nm BiFeO3 NPs as photocatalyst under different pH condi...
Figure 12: Mechanistic investigation of the photocatalytic degradation of RhB by using different radical scave...
Beilstein J. Nanotechnol. 2010, 1, 101–107, doi:10.3762/bjnano.1.12
Figure 1: AFM (a) and SEM (b) images showing the self-assembly of the NPs in a close-packed hexagonal structu...
Figure 2: Top panel: High-resolution TEM cross-section images of non-ion-milled (a) and ion-milled (b) compos...
Figure 3: Magnetic hysteresis loops at 330 K and 15 K for a monolayer film of nanoparticles (a) and the compo...
Figure 4: (a) Dark-field TEM image of the cross section NPs/thin-film system showing the CoO layer at the int...
Figure 5: ZFC/FC magnetic moment vs temperature measured in 500 Oe for a NP monolayer (green squares), non-io...
Figure 6: Top panel: AFM images of the Co surface for the non-ion-milled (a) and ion-milled (b) composite sys...