| Literature DB >> 34104624 |
Malgorzata Aleksandrzak1, Michalina Kijaczko1, Wojciech Kukulka1, Daria Baranowska1, Martyna Baca1, Beata Zielinska1, Ewa Mijowska1.
Abstract
Entities:
Keywords: chlorine; doping; hydrogen evolution reaction; photocatalysis; polymeric carbon nitride
Year: 2021 PMID: 34104624 PMCID: PMC8144906 DOI: 10.3762/bjnano.12.38
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1TEM images of PCN (a, b) and Cl-PCN (c, d). Scanning transmission electron microscopy image of Cl-PCN (e) and energy-dispersive X-ray spectroscopy (EDX) elemental mappings of N, C, O, and Cl in Cl-PCN (f).
Figure 2AFM 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.
C, N, O, and Cl atomic concentration in PCN and Cl-PCN.
| Sample | C (atom %) | N (atom %) | O (atom %) | Cl (atom %) |
| PCN | 36 | 63.58 | 0.42 | – |
| Cl-PCN | 36.86 | 62.31 | 0.65 | 0.18 |
Figure 4C 1s and N 1s XPS spectra of polymeric carbon nitride (a, b) and Cl-PCN (c, d).
Chemical composition of PCN and Cl-PCN calculated from the peak-fitting procedure applied to the N 1s and C 1s spectra of the samples.
| Sample | N–C=N | C–NH | C–C/C=C | C–Cl | N2C | N–H | N3C |
| PCN | 83.61 | 4.23 | 12.16 | – | 84.77 | 8.73 | 6.50 |
| Cl-PCN | 82.13 | 2.49 | 11.67 | 3.71 | 87.23 | 9.54 | 3.23 |
Figure 5Structure of chlorine-doped polymeric carbon nitride.
Figure 6(a) Adsorption–desorption isotherms and (b) density functional theory (DFT) applied to the adsorption isotherms to obtain pore–size distributions of PCN and Cl-PCN.
BET surface area, T-plot analysis results for micropore area, external surface area, total pore volume, and average pore diameter of PCN and Cl-PCN.
| Sample | PCN | Cl-PCN |
| BET surface area [m2/g] | 14.43 ± 0.02 | 16.27 ± 0.01 |
| T-plot micropore area [m2/g] | 2.06 | 1.94 |
| T-plot external surface area [m2/g] | 12.37 | 14.32 |
| total pore volume [cm3/g] | 0.106 | 0.096 |
| average pore diameter [nm] | 5.65 | 5.76 |
Figure 7H2 evolution rate catalyzed by PCN and Cl-PCN.
Comparative study of the photocatalytic hydrogen evolution of Cl- PCN and other carbon nitride catalysts doped with other elements.
| Doping element | PCN precursor | Light | Enhancement factor of HER over the reference sample | Ref. |
| P | melamine | >420 nm | 4 | [ |
| P | melamine | >420 nm | 1.7 | [ |
| P | melamine | >420 nm | 9.5 | [ |
| P | melamine | >420 nm | 8.6 | [ |
| S | melamine | >420 nm | 1.9 | [ |
| S | dicyandiamide | >420 nm | 8 | [ |
| S | urea | >420 nm | 30 | [ |
| B | melamine | >420 nm | 2.7 | [ |
| B | dicyandiamide | >420 nm | 12 | [ |
| B | melamine, urea | >420 nm | 2.4 | [ |
| O | melamine | >420 nm | 2 | [ |
| F | melamine | >420 nm | 2.7 | [ |
| C | melamine | >420 nm | 1.4 | [ |
| I | melamine | >420 nm | 9 | [ |
| I | DCDA | >420 nm | 2 | [ |
| I | DCDA | >420 nm | 2 | [ |
| Br | urea | >420 nm | 2 | [ |
| Br | urea | >420 nm | 3.6 | [ |
| Cl | melamine | >420 nm | 19.2 | [ |
| Cl | melamine | solar | 4.4 | this study |
| Mg/Cl | melamine | >420 nm | 8.8 | [ |
Figure 8(a) DRS spectra, (b) PL emission spectra, (c) valence band (VB) XPS spectra, and (d) band diagram of PCN and Cl-PCN.
Figure 9(a) Photocurrent response and (b) EIS spectra of PCN and Cl-PCN.