2020
DOI: 10.1021/acscatal.0c01289
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Surface Conditions That Constrain Alkane Oxidation on Perovskites

Abstract: The crystal structure of perovskites can incorporate a wide variety of cations, which makes this class of materials so interesting for studies of links between solid-state chemistry and catalysis. Perovskites are known as typical total combustion catalysts in hydrocarbon oxidation reactions. The fundamental question that we investigate here is whether surface modifications of perovskites can lead to the formation of valuable reaction products in alkane oxidation. We studied the effect of segregated two-dimensi… Show more

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Cited by 50 publications
(67 citation statements)
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“…[ 11c,30 ] The N atom possibly accelerates the surface reconstruction to the (oxy)hydroxide species. [ 11c,31 ] Consequently, a negative shift of the lattice metal–O in the O 1s XPS spectrum is observed after the OER test, [ 7a,26,32 ] which is located at 529.6 eV (O L ) (Figure 4d), due to the V etching and the formation of metal (oxy)hydroxide on the surface that result in charge transfer and the increase of the electron density around lattice O. This phenomenon is especially prevalent in alkali metal oxides where extensive charge transfer to lattice metal–O induces the shift of O 1s peak to lower binding energy.…”
Section: Resultsmentioning
confidence: 99%
“…[ 11c,30 ] The N atom possibly accelerates the surface reconstruction to the (oxy)hydroxide species. [ 11c,31 ] Consequently, a negative shift of the lattice metal–O in the O 1s XPS spectrum is observed after the OER test, [ 7a,26,32 ] which is located at 529.6 eV (O L ) (Figure 4d), due to the V etching and the formation of metal (oxy)hydroxide on the surface that result in charge transfer and the increase of the electron density around lattice O. This phenomenon is especially prevalent in alkali metal oxides where extensive charge transfer to lattice metal–O induces the shift of O 1s peak to lower binding energy.…”
Section: Resultsmentioning
confidence: 99%
“…In addition to the increasing interest in perovskites as catalysts for oxygen reduction and oxygen evolution reactions (Suntivich et al, 2011;Gupta et al, 2016;Zhu et al, 2019), this class of materials is also widely used in photocatalysis (Grabowska, 2016;Tasleem and Tahir, 2020) or total oxidation to remove volatile organic and hazardous compounds (Gil et al, 2004;Liu et al, 2018a;Liu et al, 2018b;Liu et al, 2019). However, perovskites are also suitable catalysts for selective oxidations at low temperatures (Polo-Garzon and Wu, 2018;Kamata, 2019), especially for the oxidative dehydrogenation of propane (Koch et al, 2020). The catalytic properties can be influenced by various factors, such as the surface composition (Fierro and Tejuca, 1987;Koch et al, 2020), the concentration of defects, or the partial reduction of metal ions (Evarestov et al, 2005;Mierwaldt et al, 2014;Ignatans et al, 2019;Koch et al, 2020).…”
Section: Introductionmentioning
confidence: 99%
“…However, perovskites are also suitable catalysts for selective oxidations at low temperatures (Polo-Garzon and Wu, 2018;Kamata, 2019), especially for the oxidative dehydrogenation of propane (Koch et al, 2020). The catalytic properties can be influenced by various factors, such as the surface composition (Fierro and Tejuca, 1987;Koch et al, 2020), the concentration of defects, or the partial reduction of metal ions (Evarestov et al, 2005;Mierwaldt et al, 2014;Ignatans et al, 2019;Koch et al, 2020). Oxygen species at the catalyst surface are responsible for the activation of the propane molecule.…”
Section: Introductionmentioning
confidence: 99%
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“…Moreover, according to this correlation between C-H activation barrier and reducibility of the surface metal oxide site, one of the roles of Na-promotion is to increase the reducibility of surface WO x sites, as evidenced by lowering of peak temperature It is known that MnO x based catalysts form excellent partial and total oxidation catalysts owing to their enhanced reducibility. Examples of Mn-oxide based catalysts used for oxidation reactions include: Mn 2 O 3 for complete oxidation of methane,61 Mn-oxide-CeO 2 catalysts for formaldehyde oxidation,66 Spinel CoMn 2 O 4 for toluene oxidation,67 mesoporous Mn-oxide catalysts for water oxidation,68 alkane oxidation over Mn-perovskites,69 CeO 2 -supported Mn-oxide for propane oxidation,70 In fact, analogous to the CH 4 dissociation pathway over Mn 2 O 5 moiety envisioned in the present study, operando FTIR spectroscopy elsewhere71 confirmed the formation of Mn-OH surface species by abstraction of hydrogen atoms by nucleophilic oxygen atoms (Mn-O-Mn) from propane during propane oxidation, providing support for the DFT modelling results and chemical insights presented herein. Recent state-of-the-art understanding regarding the role of Mn-and Na-promoters in Mn 2 O 3 -Na 2 WO 4 /SiO 2 OCM catalysts puts chemical insights provided in the present work in perspective.It was recently shown via experimental CH 4 +O 2 temperature-programmed-surface-reaction of well-defined single site catalysts that Na 2 WO 4 surface sites could effectively and selectively activate CH 4 in absence of any Mn-promoter to form C 2 products, making the role of Mn-promoter unclear 22.…”
mentioning
confidence: 99%