| Literature DB >> 30581716 |
Jian Zhang1,2, Yuanmiao Sun2, Jiawei Zhu3, Zhonghui Gao1, Shuzhou Li2, Shichun Mu3, Yunhui Huang1.
Abstract
Identification of catalytic sites for oxygen reduction and evolution reactions (ORR/OER) is critical to rationally develop highly efficient bifunctionalEntities:
Keywords: graphene; graphene nanoribbons; oxygen evolution reaction; oxygen reduction reaction
Year: 2018 PMID: 30581716 PMCID: PMC6299708 DOI: 10.1002/advs.201801375
Source DB: PubMed Journal: Adv Sci (Weinh) ISSN: 2198-3844 Impact factor: 16.806
Figure 1a–d) TEM image of DN‐UGNR. e) The width range of DN‐UGNR and other literature reported GNRs, as derived from Table S1 of the Supporting Information. f) Nitrogen adsorption–desorption isotherms of DN‐UGNR, the inset is pore size distribution. g) Raman, h) EPR, and the fitted N 1s spectra of DN‐UGNR.
Figure 2a) ORR polarization curves and b) the average electron transfer number (n) of CNT, N‐CNT, D‐UGNR, DN‐UGNR, and Pt/C catalysts. c) OER polarization curves for CNT, N‐CNT, D‐UGNR, DN‐UGNR, and RuO2/C catalysts. d) The overall polarization curves of CNT, N‐CNT, D‐UGNR, and DN‐UGNR catalysts in the whole ORR and OER region.
Figure 3a–d) TEM images and e) Raman spectra of different width of DN‐GNR range from 3 to 24 nm. f) ORR and g) OER polarization curves, and h) the overall polarization curves of different width of DN‐GNRs.
Figure 4a) A schematic graphene nanoribbon with four typical composite active sites. A: armchair edge, Z: zigzag edge, PN: pyridinic‐N, C5: pentagon carbon ring, C7: heptagon carbon ring. For example, the composite of pyridinic‐N and pentagon defect on the armchair edge is labeled as A‐PN+C5. b) ORR and OER volcano plots of overpotential versus adsorption energy of *OH (ΔG 0 *OH). c) Calculated Gibbs free energy diagrams of ORR and e) the optimized adsorption configurations of ORR intermediates (*OOH, *O, and *OH) on Z‐PN+C5 site. d) Calculated Gibbs free energy diagrams of OER and f) the optimized adsorption configurations of OER intermediates (*OOH, *O, and *OH) on A‐PN+C5 site.
Figure 5a) Open‐circuit voltage measurement, b) discharge curves, and c) polarization curve and power density plot of Zn–air batteries used DN‐UGNR and Pt/C electrodes. d) Discharge and charge cycling of rechargeable Zn–air batteries based on DN‐UGNR and the mixture of Pt/C+RuO2 electrodes at the current density of 5 mA cm−2. e) Rate capability behavior of Zn–air battery with DN‐UGNR electrode. Photograph of f) 22 parallel red and g–i) high‐voltage (orange, green, and blue, 3.0–3.2 V) LED lamp beads driven by two Zn–air batteries with the DN‐UGNR electrode connected in series.