Fourier transform infrared spectroscopy applications for hydrotreatment catalysts. A review
Применение преобразования Фурье в инфракрасной спектроскопии для катализаторов гидроочистки: обзор
2026-01-07
SCID: 54.1/fvn7u6gt
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Brønsted and Lewis acid sitesCoMo NiMo NiW catalystsFourier transform infrared spectroscopyM-O-M bandsMo=O bandscoordinatively unsaturated siteshydrodenitrificationhydrodeoxygenationhydrodesulfurizationhydrotreatment catalystsin situ FTIRpolyoxometalatesprobe molecules COpyridine adsorptionstructure-activity correlations
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Abstract (AI)
Fourier transform infrared spectroscopy (FTIR) has recently evolved into an essential method for the characterization of hydrotreatment catalysts due to its capability to detect vibrational modes associated with oxide and sulfided phases, supporting hydroxyl groups, and active metal sites. This review summarizes recent applications of FTIR for structural and electronic elucidation of CoMo, NiMo NiW and polyoxometalates catalysts employed in hydrodesulfurization, hydrodenitrification and hydrodeoxygenation reactions. Particular emphasis is placed on the identification of Mo = O and M-O-M bands, the role of Brønsted and Lewis acid sites, and the quantification of coordinatively unsaturated sites using probe molecules such as CO and pyridine. The advantages of FTIR for in situ studies are highlighted, allowing real-time monitoring of phase transformations and adsorption phenomena under reactive conditions. These insights provide crucial structure-activity correlations, establishing parameter for the design of novel catalysts that complies with more stringent environmental regulations in the fuel processing industry.
Key Findings
1
FTIR applications elucidate structural and electronic features of CoMo, NiMo, NiW and polyoxometalate catalysts used in hydrodesulfurization, hydrodenitrification and hydrodeoxygenation.
2
FTIR combined with probe molecules (CO, pyridine) allows quantification of coordinatively unsaturated sites and differentiation of Brønsted and Lewis acid sites.
3
FTIR enables identification of Mo=O and M–O–M vibrational bands, important for understanding catalyst structure.
4
FTIR is an essential method for characterizing hydrotreatment catalysts by detecting vibrational modes of oxide/sulfided phases, hydroxyl groups, and active metal sites.
5
In situ FTIR permits real-time monitoring of phase transformations and adsorption phenomena under reactive conditions, supporting structure–activity correlations for catalyst design.
Research Object
Hydrotreatment catalysts (CoMo, NiMo, NiW and polyoxometalate-based catalysts used in hydrodesulfurization, hydrodenitrification and hydrodeoxygenation)
Research Subject
Applications of Fourier transform infrared spectroscopy (FTIR) to characterize structural and electronic features, identify vibrational bands (e.g., Mo=O, M–O–M), probe Brønsted/Lewis acid sites and coordinatively unsaturated sites (using CO, pyridine), and monitor in situ phase transformations and adsorption to establish structure–activity correlations for catalyst design
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2026-01-07
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