Rh/Ni wet-impregnated Ia3d mesostructured aluminosilicate and r-GO catalysts for hydrodeoxygenation of phenoxybenzene

Rh/Ni bimetallic supported bifunctional 3D porous aluminosilicate and Rh/Ni supported reduced graphene oxide (r-GO) catalysts were synthesised and their structural properties evaluated by XRD, BET-surface area, FT-IR, NH 3 -TPD, H 2 -TPR, ICP-OES, HRTEM-EDAX and XPS analysis. The catalytic activitie...

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Veröffentlicht in:New journal of chemistry 2017-08, Vol.41 (16), p.7893-797
Hauptverfasser: Pichaikaran, Sudhakar, Pandurangan, Arumugam
Format: Artikel
Sprache:eng
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Zusammenfassung:Rh/Ni bimetallic supported bifunctional 3D porous aluminosilicate and Rh/Ni supported reduced graphene oxide (r-GO) catalysts were synthesised and their structural properties evaluated by XRD, BET-surface area, FT-IR, NH 3 -TPD, H 2 -TPR, ICP-OES, HRTEM-EDAX and XPS analysis. The catalytic activities of the Rh/Ni/Al-KIT-6 and Rh/Ni-rGO catalysts were investigated by analysis of the vapour phase hydrodeoxygenation (HDO) of diphenyl ether and guaiacol. The Rh/Ni/Al-KIT-6 catalyst exhibited the best catalytic performance for vapour phase HDO of diphenyl ether at 420 °C with a WHSV of 3.6 h −1 . In addition, lignin derived guaiacol was also investigated and the desired product of benzene was not achieved for both the Rh/Ni/Al-KIT-6 and Rh/Ni/r-GO catalysts. The Rh/Ni/Al-KIT-6 catalyst demonstrated excellent stability, due to the acidic Al-KIT-6 support which stabilizes the Rh/Ni particles on the surface. However, a higher dispersion of Rh/Ni species was observed on the Rh/Ni/Al-KIT-6 catalyst, as evidenced by HR-TEM imaging, which is mainly due to the large surface area of the Al-KIT-6 support, while the Rh/Ni/r-GO catalyst exhibited larger metal aggregates due to weak Rh/Ni interactions with the reduced graphene oxide (r-GO) support, resulting in a smaller surface area for this catalyst which could restrict the distribution of Rh/Ni particles. Superior catalytic activity towards the C-O bond cleavage of diphenyl ether and guaiacol was observed for the Rh/Ni/Al-KIT-6 catalyst. The superior catalytic activity of this catalyst is mainly due to the highly dispersed small Rh/Ni bimetallic species and their interactions with the mesoporous cubic acidic support via the hydrogen spill over effect, which favours the earlier NiO reduction, and which was confirmed by H 2 -TPR and HR-TEM. The Rh/Ni/Al-KIT-6 catalyst exhibit excellent catalytic properties, with 60% benzene selectivity observed. Furthermore, the bifunctional behaviour of the Rh/Ni/Al-KIT-6 catalyst, with its unique cubic morphology support in addition to the uniform dispersion of Rh/Ni species, could enhance diphenyl ether conversion and benzene selectivity. Rh/Ni bimetallic supported bifunctional 3D porous aluminosilicate and Rh/Ni supported reduced graphene oxide (r-GO) catalysts were synthesised and their structural properties evaluated by XRD, BET-surface area, FT-IR, NH 3 -TPD, H 2 -TPR, ICP-OES, HRTEM-EDAX and XPS analysis.
ISSN:1144-0546
1369-9261
DOI:10.1039/c7nj00367f