| Literature DB >> 29523847 |
Juan Yang1, Min Xu1, Jingyu Wang2, Shangbin Jin3, Bien Tan1.
Abstract
In this paper, we proposed a new strategy to prepare multiple heteroatom doped (Entities:
Year: 2018 PMID: 29523847 PMCID: PMC5844873 DOI: 10.1038/s41598-018-22507-2
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Synthetic route of N, P co-doped carbon networks. For the name C-POP-x-y, x represents monomer while y represents carbonization temperature.
Figure 2FT-IR spectra of (a) the HAPCP (blue), the p-PD (red) and POP-1 (black), (b) the HAPCP (blue), the m-PD (red) and POP-2 (black).
Figure 3(a,b) SEM and HR-TEM images of C-POP-2-900, (c–g) SEM images of C-POP-2-900 with corresponding C, N, P and O elemental mappings.
Figure 4Raman spectra of POP-2, C-POP-2-800, C-POP-2-900 and C-POP-2-1000.
Figure 5(a) XPS N1s spectra of POP-2 and C-POP-2-900, (b) P2p spectra of POP-2 and C-POP-2-900. The curve of N1s spectra were fitted to four curves: pyridinic-N, pyrrolic-N, graphitic-N and oxidized-N, (c) The percentage contents of N and P of different pyrolysis temperature and (d) the corresponding N species contents obtained from the XPS measurements.
The contents of the C, O, N and P for POP-2 and carbon networks and the relative N species analyzed by N 1s XPS spectra of the carbon networks.
| Sample | Ca (wt%) | Oa (wt%) | Na (wt%) | Pa (wt%) | Pyridinic-Nb (wt%) | Pyrrolic-Nb (wt%) | Graphitic-Nb (wt%) | Oxidized-Nb (wt%) |
|---|---|---|---|---|---|---|---|---|
| POP-2 | 68.99 | 12.89 | 10.72 | 7.40 | ||||
| C-POP-2-800 | 71.40 | 13.96 | 4.82 | 9.82 | 14.05 | 14.42 | 48.50 | 23.03 |
| C-POP-2-900 | 85.79 | 8.88 | 3.21 | 2.12 | 21.78 | 6.88 | 55.34 | 15.99 |
| C-POP-2-1000 | 87.91 | 8.73 | 1.31 | 2.05 | 9.50 | — | 57.03 | 33.47 |
aThe total C, O, N, P contents of the samples are considered as 100 wt%, bThe weight percentage of the relative N species occupying in the total N content.
Figure 6(a) Nitrogen gas adsorption-desorption isotherms (in order to facilitate comparison, the isotherms of C-POP-2-900, C-POP-2-1000 were shifted vertically by 300 and 1000 cm3 g−1, respectively) and (b) corresponding pore size distributions of C-POP-2-800, C-POP-2-900, C-POP-2-1000.
Figure 7(a) CV curves of C-POP-2-900 electrocatalyst in N2- and O2-saturated 0.1 M KOH solutions at a scan rate of 50 mV s−1. (b) LSV curves of various electrocatalysts in O2-saturated 0.1 M KOH solution at a rotation speed of 1600 rpm and a scan rate of 10 mV s−1. (c) Tafel plots of the above materials modified electrodes. (d) LSV curves of C-POP-2-900 with different RDE rotation speeds in O2-saturated 0.1 M KOH at a scan rate of 10 mV s−1.
Figure 8(a) Durability evaluation from the I-t chronoamperometric and (b) Methanol-crossover responses of the C-POP-2-900 electrodes in aqueous solution of KOH (0.1 M) saturated with O2 Also included is the commercial Pt/C electrode for comparison.