| Literature DB >> 32351930 |
Guanghua He1,2, Genping Yan1, Yonghai Song2, Li Wang2.
Abstract
Juncus is a perennial herb aquatic plant found worldwide, with high reproductive ability in warm regions. It has three-dimensional hierarchical porous triangular networks structures composited of tubular fibers. Here, juncus derived nitrogen-doped porousEntities:
Keywords: juncus; nitrogen-doped porous carbon; oxygen reduction reaction; renewable materials; supercapacitors
Year: 2020 PMID: 32351930 PMCID: PMC7174754 DOI: 10.3389/fchem.2020.00226
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Scheme 1Schematic of the synthesis process of NDPC and its applications.
Figure 1SEM images of HPC-800. (A) Top-view image (the inset was low magnification). (B) Image magnified from position A. (C) Side-view image (the inset was low magnification). (D) Image magnified from position C. (E,F) Longitudinal sectioned image.
Figure 2HR-TEM images of (A) HPC-800, (B) NDPC-1-800, (C) NDPC-3-800 and (D) NDPC-5-800.
Figure 3(A) XRD patterns of HPC-800, NDPC-1-800, NDPC-3-800 and NDPC-5-800. (B) Raman spectra of HPC-800, NDPC-1-800, NDPC-3-800 and NDPC-5-800. (C) Nitrogen adsorption-desorption isotherm and (D) pore size distributions of HPC-800, NDPC-1-800, NDPC-3-800 and NDPC-5-800. (E) The full-scan XPS spectra of HPC-800, NDPC-1-800, NDPC-3-800 and NDPC-5-800.
Specific surface area, pore structure characterization parameters and elemental analysis of different samples.
| HPC-800 | 57.8 | 0.035 | 9.1 | 91.7 | 1.0 | 7.3 |
| NDPC-1-800 | 1344.7 | 0.885 | 3.2 | 90.4 | 1.8 | 7.8 |
| NDPC-3-800 | 1379.9 | 1.163 | 3.6 | 90.7 | 1.8 | 7.5 |
| NDPC-5-800 | 1367.2 | 1.559 | 4.5 | 91.3 | 2.1 | 6.6 |
Figure 4(A) CV curves of HPC-800, NDPC-1-800, NDPC-3-800, and NDPC-5-800 electrodes in 6.0 M KOH electrolyte at the scan rate of 5 mV s−1. (B) Galvanostatic charge-discharge curves of HPC-800, NDPC-1-800, NDPC-3-800 and NDPC-5-800 electrode at the current density of 0.5 A g−1. (C) CV curves of NDPC-3-800 electrode at different scan rate. (D) Galvanostatic charge-discharge curves of NDPC-3-800 electrode at different current density. (E) Specific capacitance of HPC-800, NDPC-1-800, NDPC-3-800 and NDPC-5-800 electrode at various current densities. (F–I) Electrochemical characterization of NDPC-3-800//NDPC-3-800 symmetric supercapacitor device in 6.0 M KOH electrolyte. (F) CV curves at different scan rates. (G) Galvanostatic charge-discharge curves at different current density. (H) Specific capacitances of the device at various current densities. (I) Ragone plot.
Figure 5(A) CV curves of Pt/C, NDPC-1-800, NDPC-3-800 and NDPC-5-800 in N2 and O2 saturated 0.1 M KOH at the scan rate of 10 mV s−1. (B) LSV curves of NDPC-5-800 and Pt/C catalyst recorded in O2 saturated 0.1 M KOH at the scan rate of 10 mV s−1 and the rotation rate of 1600 rpm. (C) RDE voltammograms of NDPC-5-800 catalyst in O2 saturated 0.1 M KOH with various rotation rates at scan rate of 10 mV s−1. Inset showed the corresponding Koutecky–Levich plots of NDPC-5-800 catalyst at different potentials. (D) RDE voltammograms of Pt/C catalyst in O2 saturated 0.1 M KOH with various rotation rates at the scan rate of 10 mV s−1. Inset showed the corresponding Koutecky–Levich plots of Pt/C catalyst at different potentials.