MnO 2 Nanowire-CeO 2 Nanoparticle Composite Catalysts for the Selective Catalytic Reduction of NO x with NH 3
MnO -based catalysts have been applied to the selective catalytic reduction of NO with ammonia (NH ) owing to their high NO removal efficiency and catalytic stability. In general, the fabrication of a variety of nanomaterials in a complex structure requires complicated processes, including heat trea...
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Veröffentlicht in: | ACS applied materials & interfaces 2018-09, Vol.10 (38), p.32112-32119 |
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Hauptverfasser: | , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | MnO
-based catalysts have been applied to the selective catalytic reduction of NO
with ammonia (NH
) owing to their high NO
removal efficiency and catalytic stability. In general, the fabrication of a variety of nanomaterials in a complex structure requires complicated processes, including heat treatment and a series of cleaning steps. In addition, MnO
which has diverse polymorphs, exhibits different catalytic effects depending on its crystalline structure. Among them, synthesizing the ε-MnO
phase, which functions as a nanocatalyst, has been the most difficult and has hardly been reported. Here, we report the synthesis of heterostructured composite nanocatalysts consisting of ε-MnO
nanowires (NWs) and CeO
nanoparticles (NPs) by applying pulsed currents sequentially. This method drastically simplifies the overall process compared to the conventional techniques. Through X-ray diffraction and transmission electron microscopy, it was confirmed that 2-3 nm of CeO
NPs were formed on the surfaces of the ε-MnO
NWs. The de-NO
efficiency of the nanocatalysts was analyzed in terms of content variation, specific surface area, and the elemental chemical state of the surface. A ceramic filter containing the nanocatalysts shows a high catalytic activity over the broad operating temperature range 100-400 °C. In the low-temperature region, ε-MnO
plays a major role in determining the catalytic property, which is consistent with the Brunauer-Emmett-Teller (BET), H
temperature-programmed reduction (TPR), and X-ray photoelectron spectroscopy (XPS) results. On the other hand, in the high-temperature region, the efficiency increases gradually as the content of CeO
increases. The H
TPR, NH
-temperature-programmed desorption, and XPS patterns reveal why the composite exhibits such superior characteristics in the temperature range mentioned above. |
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ISSN: | 1944-8244 1944-8252 |
DOI: | 10.1021/acsami.8b09605 |