| Literature DB >> 25918496 |
Yusuke Hiraike1, Makoto Saito2, Hideharu Niwa3, Masaki Kobayashi4, Yoshihisa Harada5, Masaharu Oshima6, Jaehong Kim7, Yuta Nabae8, Masa-Aki Kakimoto8.
Abstract
Carbon-based cathode catalysts derived from a hyperbranchedEntities:
Keywords: Electronic structure; Hyperbranched polymer; Iron phthalocyanine (FePc); Oxygen reduction reaction (ORR); X-ray photoemission spectroscopy
Year: 2015 PMID: 25918496 PMCID: PMC4401482 DOI: 10.1186/s11671-015-0881-8
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1Structural formulae of precursors. (a) Iron phthalocyanine (FePc) and phenolic resin (PhRs), and (b) hyperbranched iron phthalocyanine polymer (HB-FePc). In this study, biphenyl was used to link HB-FePc (X).
Figure 2Electrochemical characterization of the catalysts. Linear sweep voltammograms of (a) FePh/PhRs and (b) HB-FePc catalysts and onset potential and current density plots as a function of pyrolysis temperature (bottom) of (c) FePc/PhRs and (d) HB-FePc catalysts.
Specific BET surface area of FePc/PhRs and HB-FePc catalysts calculated from nitrogen adsorption measurements
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| 900 | - | 409 |
| 800 | 407 | 485 |
| 700 | 444 | 409 |
| 650 | 437 | 384 |
| 600 | 515 | 337 |
| 550 | 506 | 564 |
aData from ref. [14].
Figure 3TG/DTA and DTG curves. (a) FePc/PhRs and (b) HB-FePc precursor.
Figure 4XRD patterns. (a) FePc/PhRs and (b) HB-FePc catalysts.
Figure 5C 1s HXPES spectra. (a) FePc/PhRs and (b) HB-FePc catalysts. (c) Plot of FWHM of C 1s HXPES spectra as a function of pyrolysis temperature.
Figure 6Fe 2p HXPES spectra. (a) FePc/PhRs and (b) HB-FePc catalysts. Solid, dashed, and dotted lines show the binding energies of Fe metal, Fe2+, and Fe3+, respectively. The arrows indicate satellite peaks of Fe2O3 2p 3/2 and 2p 1/2, which emerge approximately 8 eV above pristine peaks [31]. In the spectrum of the FePc/PhRs precursor, a peak from In 3p 1/2 is observed.
Figure 7N 1s HXPES spectra. (a) FePc/PhRs and (b) HB-FePc catalysts, each spectrum fitted with Voigt functions followed by background subtraction by the Shirley method (dashed line). Orange, green, red, and purple solid lines are pyridine-like or FePc (NP1), pyrrole- or cyanide-like (NP2), graphite-like (NP3), and oxide (NP4) nitrogen components, respectively. (c) Structural formulae of four nitrogen components in graphite. (d) Plot of calculated nitrogen content as a function of pyrolysis temperature.
Fitting parameters and relative composition ratios of four nitrogen components in FePc/PhRs catalysts
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| Fe800 | 1.72 | 0.64 | 398.5 | 400.2 | 401.1 | 403.6 |
| (46.2) | (3.2) | (46.5) | (4.1) | |||
| Fe700 | 1.42 | 0.56 | 398.4 | 400.2 | 401.0 | 403.1 |
| (38.9) | (9.7) | (45.1) | (6.3) | |||
| Fe600 | 1.15 | 2.80 | 398.6 | 400.1 | 401.0 | 403.4 |
| (59.0) | (19.6) | (19.5) | (1.9) | |||
| Fe550 | 1.09 | 4.72 | 398.7 | 399.9 | 401.7 | 403.5 |
| (70.3) | (15.5) | (13.0) | (1.2) | |||
| Fe500 | 1.15 | 6.83 | 398.6 | 399.9 | 400.7 | 403.4 |
| (68.7) | (16.1) | (13.7) | (1.5) | |||
| FePc/PhRs | 0.79 | 399.1 | - | - | - | |
| (100.0) | (0.0) | (0.0) | (0.0) | |||
Fitting parameters and relative composition ratios of four nitrogen components in HB-FePc catalysts
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| HB900 | 1.53 | 0.45 | 398.3 | 400.1 | 401.1 | 403.2 |
| (36.3) | (7.4) | (50.8) | (5.5) | |||
| HB800 | 1.44 | 0.56 | 398.2 | 400.1 | 401.0 | 403.0 |
| (34.4) | (11.1) | (47.6) | (7.0) | |||
| HB700 | 1.30 | 2.17 | 398.6 | 400.2 | 401.1 | 403.5 |
| (43.9) | (11.9) | (40.7) | (3.5) | |||
| HB650 | 1.30 | 2.76 | 398.5 | 400.1 | 401.1 | 403.3 |
| (47.7) | (24.8) | (25.5) | (2.0) | |||
| HB600 | 1.30 | 3.09 | 398.6 | 399.8 | 400.9 | 403.3 |
| (52.6) | (22.9) | (24.0) | (0.5) | |||
| HB550 | 1.30 | 4.56 | 398.4 | 399.8 | 400.6 | 403.2 |
| (62.1) | (18.5) | (19.0) | (0.4) | |||