Novel low-temperature lean NOx storage materials based on La0.5Sr0.5Fe1-xMxO3-δ/Al2O3 infiltration composites (M = Ti, Zr, Nb)

[Display omitted] •New low-temperature lean NOx traps based on perovskite/alumina nanocomposites.•High surface nanocomposite based on B-site substituted lanthanum strontium ferrite.•High NOx storage capacity related to B-site elements in the order of Zr > Ti > Nb.•Hydrothermal ageing affects N...

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Veröffentlicht in:Applied catalysis. B, Environmental Environmental, 2021-06, Vol.286, p.119919, Article 119919
Hauptverfasser: Ecker, S.I., Dornseiffer, J., Werner, J., Schlenz, H., Sohn, Y.J., Sauerwein, F.S., Baumann, S., Bouwmeester, H.J.M., Guillon, O., Weirich, T.E., Meulenberg, W.A.
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Sprache:eng
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Zusammenfassung:[Display omitted] •New low-temperature lean NOx traps based on perovskite/alumina nanocomposites.•High surface nanocomposite based on B-site substituted lanthanum strontium ferrite.•High NOx storage capacity related to B-site elements in the order of Zr > Ti > Nb.•Hydrothermal ageing affects NOx storage capacity only slightly. Low-temperature NOx storage materials for lean NOx traps based on nanocomposites containing perovskite-type oxides of La0.5Sr0.5Fe1-xMxO3-δ (M = Ti, Nb or Zr; x = 0.25 or 0.5) are prepared in a highly porous alumina with different loadings of 15−25 wt. %. The resulting storage materials are characterised by X-ray diffraction, BET and transmission electron microscopy with coupled ASTAR system for crystallite phase mapping. For all nanocomposites high surface areas around 100 m²/g are found. With perovskite loadings of 20 wt. % the platinised composites reveal NOx storage capacities between 120–164 μmol/g below 300 °C with a performance ranking of Zr > Ti > Nb. After hydrothermal ageing at 750 °C only for the Nb and Zr containing composites a decrease of the NSC up to 20 % can be observed. The NSC of the LSFT system can be improved by decreasing the perovskite loading to 15 wt. %.
ISSN:0926-3373
1873-3883
DOI:10.1016/j.apcatb.2021.119919