Nitrous Oxide Decomposition on the Binuclear [FeII(μ-O)(μ-OH)FeII] Center in Fe-ZSM-5 Zeolite

被引:46
作者
Guesmi, Hazar [1 ]
Berthomieu, Dorothee [1 ]
Kiwi-Minsker, Lioubov [2 ]
机构
[1] Ecole Natl Super Chim Montpellier, Equipe MACS, Inst Charles Gerhardt, CNRS,UM2,UM1,UMR 5253, Montpellier, France
[2] Ecole Polytech Fed Lausanne, GGRC ISIC, Stn 6, CH-1015 Lausanne, Switzerland
关键词
D O I
10.1021/jp808044r
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The reaction mechanism for nitrous oxide (N2O) direct decomposition into molecular nitrogen and oxygen was studied on binuclear iron sites in Fe-ZSM-5 zeolite using the density functional theory (DFT). Starting from the hydroxylated bi-iron complex [HOFeIII(mu-O)(mu-OH)(FeOH)-O-III](+), a reductive dehydroxylation pathway was proposed to justify the formation of the active site [Fe-II(mu-O)(mu-OH)Fe-II](+). The latter contains two Fe-II ions linked via oxo and hydroxo bridges, Z(-)[Fe-II(mu-O)(mu-OH)Fe-II](+), and for the first time was considered to catalyze the N2O decomposition. The DFT results show the activity of [Fe-II(mu-O)(mu-OH)Fe-II](+) complex for the N2O decomposition. The first step of the catalytic reaction corresponds to a spontaneous adsorption of N2O over Fe-II sites, followed by the surface atomic oxygen loading and the release of molecular nitrogen. The formation of molecular O-2 occurs through the migration of the atomic oxygen from one iron site to another one followed by the recombination of two oxygen atoms and the desorption of molecular oxygen. The computed reactivity over the binuclear iron core complex [Fe-II(mu-O)(mu-OH)Fe-II](+) is consistent with experimental data reported in the literature. Although the dissociation steps of the N2O molecules, calculated with respect to adsorbed N2O intermediates, are highly energetic, the energy barrier associated with the atomic oxygen migration is the highest one. Up to 700 K, the oxygen migration step has the highest free energy barrier, suggesting that it is the rate-limiting step of the overall kinetics. This result explains the absence of O-2 formation in experimental study of N2O decomposition at temperatures below 623 K.
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页码:20319 / 20328
页数:10
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