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In situ characterization of porous VPO catalysts with fibrous structure: Identifying the redox behavior and the stability of active sites

Berenguer-Betrián, Raúl,Fornells, Jaime,Rodríguez-Mirasol, José,Cordero-Alcántara, Tomás,Ford, Michael,Wachs, Israel E.

Abstract

Two VPO materials with fibrillar morphology have been prepared by the aid of electrospinning technique. One is a VPO carbon-supported material (VCF200) with fibrous morphology and very high surface area that is stable under oxidizing conditions up to 350C. The other material is a bulk mixed VPO oxide (VPO500) with fibrous structure obtained after optimizing the calcination of the carbon support in VCF200. Despite it is a bulk oxide material, this material exhibits a high surface area (> 60 m2/g). The redox behavior of both samples was monitored by in situ Raman spectroscopy under oxidation/reduction cycles. For the dehydrated supported sample (VCF200), the pyrophosphate phase (VO)2P2O7 (Raman ~930 cm-1) is detected, which has been described as the active phase (see Figure (a) below). This phase is quite stable since it does not disappear upon subsequent oxidation/reduction cycles. Under reduction conditions at 125C, in consecutive cycles, additional Raman bands appear at ~1090 cm-1 that are characteristic of the αII-VOPO4 phase. On the other hand, the bulk phases show a reversible behavior under redox cycles (Figure (b)). Under reducing conditions, a Raman band appears at ~980 cm-1 (β-VPO phase), whereas under oxidation conditions some segregation to VOx oxides occurs. Nevertheless, this segregation is reversible and the β-VPO phase forms again under reducing conditions. Thus, these results demonstrate that the active VPO phases of these fibrous catalysts are quite stable, and that their structure is reversible under several redox cycles, which make them suitable as oxidation catalysts.

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In situ characterization of porous VPO catalysts with fibrous structure: identifying the redox behavior of active sites M.O. Guerrero-Péreza, R. Berenguera, J. Fornellsa, J. Rodríguez-Mirasola, T. Corderoa, Michael E. Fordb and I.E. Wachsb a Universidad de Málaga, Andalucía Tech, Departamento de Ingeniería Química, E29010 Málaga, Spain; b Operando Molecular Spectroscopy, Department of Chemical Engineering, Lehigh Univerisity, Bethlehem, PA. * ([email protected]). Tel. +34 951952384 Two VPO materials with fibrilar morphology have been prepared. One is a VPO carbon-supported material (VCF200) with fibrous morphology and a very high surface area, stable under oxidizing conditions up to 350ºC. The other material is a bulk mixed VPO oxide (VPO500) with fibrous structure obtained after optimizing the calcination of the supported material. This material presents a very high surface area although it is a bulk oxide material (more than 60 m2/g). The redox behavior of both samples was monitored under in situ Raman under oxidation/reduction cycles. For the supported sample, it is detected the pyrophosphate phase (VO)2P2O7, which has been described as the active phase, in the dehydrated sample. The results show that this phase, identified by a Raman peak near 930 cm-1, is quite stable, since such band does not disappear under oxidation/reduction cycles. The results show that under reduction conditions, in consecutive cycles, and always around 125ºC, additional Raman bands appear near 1089 and 1090, characteristic of II VOPO4 phase. The VPO phases that are present in the bulk catalyst are different, but also show a reversible behavior under redox cycles. Under reducing conditions, a Raman band near 980 cm-1, that is identified with the  VPO phase is detected, whereas under oxidation conditions some segregation to VOx oxides occur, although such segregation is reversible and the VPO phase forms again under reducing conditions. Thus, these results demonstrate that the active VPO phases of these samples are quite stable, and that the structure of the catalysts is reversible under several redox cycles, which make it suitable as catalyst. Figure: In situ Raman spectra under redox cycles conditions for VCF200 sample 2000 1800 1600 1400 1200 1000 800 600 400 200 10% H2/Ar, 175oC 10% H2/Ar, 150oC Intensity (a.u.) Raman shift (cm-1) 934 Dehydrated, 110oC 10% H2/Ar, 125oC 1168 1591 1331 1089 1020 995 590 2000 1800 1600 1400 1200 1000 800 600 400 200 150oC; 10% H2/Ar 125oC; 10% H2/Ar 125oC; 10% O2/Ar Intensity (a.u.) Raman shift (cm-1) 110oC; 10% O2/Ar 1599 1342 934 995 1071