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Beilstein J. Nanotechnol. 2021, 12, 473–484, doi:10.3762/bjnano.12.38
Figure 1: TEM images of PCN (a, b) and Cl-PCN (c, d). Scanning transmission electron microscopy image of Cl-P...
Figure 2: AFM images and height profile of PCN (a, b) and Cl-PCN (c, d).
Figure 3: (a) FTIR spectra and (b) XRD patterns of PCN and Cl-PCN.
Figure 4: C 1s and N 1s XPS spectra of polymeric carbon nitride (a, b) and Cl-PCN (c, d).
Figure 5: Structure of chlorine-doped polymeric carbon nitride.
Figure 6: (a) Adsorption–desorption isotherms and (b) density functional theory (DFT) applied to the adsorpti...
Figure 7: H2 evolution rate catalyzed by PCN and Cl-PCN.
Figure 8: (a) DRS spectra, (b) PL emission spectra, (c) valence band (VB) XPS spectra, and (d) band diagram o...
Figure 9: (a) Photocurrent response and (b) EIS spectra of PCN and Cl-PCN.
Beilstein J. Nanotechnol. 2017, 8, 1508–1514, doi:10.3762/bjnano.8.151
Figure 1: Representative TEM micrographs of: A) final rGO–Pt dispersion, B) sediment rGO–Pt. The scale bars r...
Figure 2: A) Representative dark-field image of pattern printed using rGO–Pt ink. B) Enlarged detail of the “...
Figure 3: Schematic of printed catechol-modified chitosan/rGO–Pt nanocomposite, functionalized with DNA oligo...
Figure 4: Confocal microscopy of printed, annealed rGO–Pt ink functionalized with DNA oligonucleotide probes....
Figure 5: Simultaneous reduction and functionalization of GO to rGO–Pt nanocomposite.