| Literature DB >> 23974295 |
Xiujuan Sun1, Ping Song, Yuwei Zhang, Changpeng Liu, Weilin Xu, Wei Xing.
Abstract
For the goal of practical industrial development of fuel cells, cheap, sustainable and high performance electrocatalysts forEntities:
Mesh:
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Year: 2013 PMID: 23974295 PMCID: PMC3752611 DOI: 10.1038/srep02505
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Electrochemical characterization of BP2000-NF.
(a) CVs of pure BP2000, BP2000-N, BP2000-F and BP2000-NF in O2-saturated 0.1 M KOH with scan rate of 50 mV/s. (b) RDE polarization curves of pure BP2000, BP2000-N, BP2000-F, BP2000-NF and Pt/C in O2-saturated 0.1 M KOH with scan rate of 5 mV/s and rotation speed of 1600 rpm. (c) Voltamperograms for oxygen reduction on BP2000-NF in O2-saturated 0.1 M KOH at various rotation speeds with scan rate of 5 mV/s. Inset: K-L plots at different potentials. (d) Tafel plots for BP2000-NF and Pt/C extracted from (b). The loading of catalysts is 0.39 mg cm−2 for doped carbon catalysts and 24 μgPt cm−2 for commercial Pt/C.
Figure 2The tolerance and stability of BP2000-NF and Pt/C.
CVs of BP2000-NF (a) and Pt/C (b) in N2-(blue), O2-saturated (black), 3 M methanol O2-saturated (red), CO- and O2-saturated (green) 0.1 M KOH with scan rate of 50 mV/s. (c) RDE polarization curves of BP2000-NF with scan rate of 5 mV/s before and after 6000, 20,000 and 50,000 potential cycles in O2-saturated 0.1 M KOH. (d) RDE polarization curves of Pt/C with scan rate of 5 mV/s before and after 6,000 potential cycles in O2-saturated 0.1 M KOH.
Figure 3The ADMFC performance with different cathodes.
(a) The voltage and power density of ADMFCs at 60°C with (square) BP2000-NF (3 mg/cm2) and (star) Pt/C (60 wt%, 3 mg Pt/cm2) as cathodes, respectively. (b) The normalized long-term operation stability of ADMFC potential with BP2000-NF and Pt/C as cathodes, respectively, with fixed current of 200 mA at 37°C. Anode: Pt/C (60 wt%, 3 mg Pt/cm2) with 2 M methanol in 2 M KOH with a flow rate of 5 mL/min, cathode: dry oxygen with flow rate of 100 mL/min.
Figure 4High resolution N 1s (a) and F 1s (b) XPS spectra of BP2000-NF. (c) The optimized structures for models a + O, b + O, c + Oand d + O in solution phase.
The optimized structures for the CB-O2 systems and their geometry parameters in solution phase
| Compound | ||||
|---|---|---|---|---|
| 1.726 | 1.584 | 1.556 | 0.770 | |
| 1.217 | 1.241 | 1.254 | 1.258 | |
| −0.02 | −0.21 | −0.31 | −0.33 | |
| −0.04 | −0.20 | −0.36 | −0.39 |
Note: aEg: The energy gap between HOMO and LUMO for models a, b, c and d without O2 adsorption.
bDO-O: The bond length for O2. ceO2: The charge O2 possesses.
dEad: The adsorption energy, and it is equal to Ead = E(CB-O2)−E(CB)−E(O2), in which E(CB-O2), E(CB) and E(O2) is the total energy for CB-O2 system, separated CB and separated O2 molecule.