| Literature DB >> 26538366 |
Xu Chen1, Daping He1, Hui Wu1, Xiaofeng Zhao1, Jian Zhang1, Kun Cheng1, Peng Wu1, Shichun Mu1.
Abstract
For the first time a novel oxygen reduction catalyst with a 3D platinized graphene/nano-ceramic sandwiched architecture is successfully prepared by an unusual method. Herein the specific gravity of graphene nanosheets (GNS) is tailored by platinizing graphene in advance to shorten the difference in the specific gravity between carbon and SiC materials, and then nano-SiC is well intercalated into GNS interlayers. This nano-architecture with highly dispersed Pt nanoparticles exhibits a very high oxygen reduction reaction (ORR) activity and polymer electrolyte membrane (PEM) fuel cell performance. The mass activity of half cells is 1.6 times of that of the GNS supported Pt, and 2.4 times that of the commercial Pt/C catalyst, respectively. Moreover, after an accelerated stress test our catalyst shows a predominantly electrochemical stability compared with benchmarks. Further fuel cell tests show a maximum power density as high as 747 mW/cm(2) at low Pt loading, which is more than 2 times higher than that of fuel cells with the pristine graphene electrode.Entities:
Year: 2015 PMID: 26538366 PMCID: PMC4995351 DOI: 10.1038/srep16246
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Illustration of the formation of a layer-by-layer Pt-RGO/SiC architecture including the steps of restacked GO, dispersed GO nanosheets in a solution, deposition of Pt nanoparticles on RGO and insertion of nano-ceramics into dispersed Pt/RGO layers.
Figure 2SEM (a,b) and TEM (c,d) images of the Pt-RGO/SiC catalyst.
Figure 3XRD spectra (a) and Raman spectra (b) of Pt/RGO and Pt-RGO/SiC catalysts.
Figure 4CV curves (a) and ECSA (b) of Pt-RGO/SiC, Pt/RGO and commercial Pt/C catalysts; current-potential polarization curves for ORR (c) and mass activities at +0.9 V vs. RHE (d) in 0.1 M HClO4 solution.
Figure 5Changes of ECSA (a) as a function of the number of potential cycles; TEM images of the Pt/RGO (b) and Pt-RGO/SiC (d) catalysts after AST, and Pt particle size distributions of Pt/RGO (c) and Pt-RGO/SiC (e) before (black) and after (red) AST.
Figure 6A SEM image of catalyst layers at cathode electrodes applied in PEM fuel cells for Pt-RGO/SiC (a) and a selective-area magnified image (b); A SEM image of catalyst layers at cathode electrodes for PEM fuel cells for Pt/RGO (c) and a selective-area magnified image (d); Fuel cell performance by single cell tests Polarization curves (e) and power density (f) for Pt-RGO/SiC and Pt/RGO electrodes.