A density functional theory study of catalytic sites for oxygen reduction in Fe/N/C catalysts used in H2/O2 fuel cells

The oxygen reduction catalytic activity of carbon-supported FeN 4 moieties bridging micropores between two graphene sheets was investigated by density functional theory (DFT). Based on the FeN 2+2 /C structure proposed earlier by our group, two types of FeN 2+2 /C structures were considered: one mos...

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Veröffentlicht in:Physical chemistry chemical physics : PCCP 2014-07, Vol.16 (27), p.13654-13661
Hauptverfasser: Szakacs, Csaba E, Lefèvre, Michel, Kramm, Ulrike I, Dodelet, Jean-Pol, Vidal, François
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container_issue 27
container_start_page 13654
container_title Physical chemistry chemical physics : PCCP
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creator Szakacs, Csaba E
Lefèvre, Michel
Kramm, Ulrike I
Dodelet, Jean-Pol
Vidal, François
description The oxygen reduction catalytic activity of carbon-supported FeN 4 moieties bridging micropores between two graphene sheets was investigated by density functional theory (DFT). Based on the FeN 2+2 /C structure proposed earlier by our group, two types of FeN 2+2 /C structures were considered: one mostly planar and one in which the Fe ion is significantly displaced out of the graphitic plane. A structure in which the FeN 4 moiety is embedded in an extended graphene sheet (FeN pyri 4 /C) was also considered. In addition, we have investigated the influence of an axial pyridine group approaching the Fe centre. The formation energy is lowest for the planar FeN 2+2 /C structure. The overall downhill behaviour of the relative free energy vs. the reaction step suggests that most structures have catalytic activity near zero potential. This conclusion is further supported by calculations of the binding energies of adsorbed O 2 and H 2 O and of the O-O bond lengths of adsorbed O 2 and OOH. The side-on interaction of adsorbed O 2 is preferred over the end-on interaction for the three basic structures without the axial pyridine. The pyridine coordination produces a stronger binding of O 2 for the planar FeN 2+2 /C and the FeN pyri 4 /C structures as well as a dominant end-on interaction of O 2 . The energy levels of the planar FeN 2+2 /C structure with and without the pyridine ligand are nearly equal for iron spin states S = 1 and S = 2, suggesting that both configurations are formed with similar concentration during the preparation process, as also previously found for two of the iron sites by Mössbauer spectroscopy experiments. The oxygen reduction catalytic activity of carbon-supported FeN 4 moieties bridging micropores between two graphene sheets was investigated by density functional theory (DFT).
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Based on the FeN 2+2 /C structure proposed earlier by our group, two types of FeN 2+2 /C structures were considered: one mostly planar and one in which the Fe ion is significantly displaced out of the graphitic plane. A structure in which the FeN 4 moiety is embedded in an extended graphene sheet (FeN pyri 4 /C) was also considered. In addition, we have investigated the influence of an axial pyridine group approaching the Fe centre. The formation energy is lowest for the planar FeN 2+2 /C structure. The overall downhill behaviour of the relative free energy vs. the reaction step suggests that most structures have catalytic activity near zero potential. This conclusion is further supported by calculations of the binding energies of adsorbed O 2 and H 2 O and of the O-O bond lengths of adsorbed O 2 and OOH. The side-on interaction of adsorbed O 2 is preferred over the end-on interaction for the three basic structures without the axial pyridine. The pyridine coordination produces a stronger binding of O 2 for the planar FeN 2+2 /C and the FeN pyri 4 /C structures as well as a dominant end-on interaction of O 2 . The energy levels of the planar FeN 2+2 /C structure with and without the pyridine ligand are nearly equal for iron spin states S = 1 and S = 2, suggesting that both configurations are formed with similar concentration during the preparation process, as also previously found for two of the iron sites by Mössbauer spectroscopy experiments. 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title A density functional theory study of catalytic sites for oxygen reduction in Fe/N/C catalysts used in H2/O2 fuel cells
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