The Coking of a Solid Catalyst Rationalized with Combined Raman and Fluorescence Lifetime Microscopy

Robin Vogel, Caroline Versluis, Rowie Frijsen, P Tim Prins, Eelco T C Vogt, Freddy T Rabouw, Bert Marc Weckhuysen*

*Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

The formation of carbon deposits is a major deactivation pathway for solid catalysts. Studying coking on industrially relevant catalysts is, however, often challenging due to the sample heterogeneity. That is especially true for zeolite-containing catalysts where fluorescence often hampers their characterization with Raman spectroscopy. We turned this disadvantage into an advantage and combined Raman and fluorescence (lifetime) microscopy to study the coking behavior of an equilibrium catalyst material used for fluid catalytic cracking of hydrocarbons. The results presented illustrate that this approach can yield new insights in the physicochemical processes occurring within zeolite-containing catalyst particles during their coking process. Ex situ analyses of single catalyst particles revealed considerable intra-sample heterogeneities. The sample-averaged Raman spectra showed a higher degree of graphitization when the sample was exposed to more hexane, while the sample-averaged fluorescence lifetime showed no significant trend. Simultaneous in situ Raman and fluorescence (lifetime) microscopy, used to follow the coking and the regeneration of single particles, gave more insights in the changing fluorescence dynamics. During the coking, the rise and decline of the average fluorescence lifetime suggested the prolonged presence of smaller coke species that are quenched more and more by adjacent larger polyaromatics acting as Förster-resonance-energy-transfer acceptors.

Original languageEnglish
Article numbere202409503
JournalAngewandte Chemie-International Edition
Volume63
Issue number40
Early online date8 Jul 2024
DOIs
Publication statusPublished - 1 Oct 2024

Bibliographical note

Publisher Copyright:
© 2024 The Authors. Angewandte Chemie International Edition published by Wiley-VCH GmbH.

Funding

B.M.W. acknowledges financial support for this project from the TKI (Top Consortia for Knowledge and Innovation) for Chemistry and BASF, as well as the Dutch Research Council (NWO) in the frame of the Gravitation program Netherlands Center for Multiscale Catalytic Energy Conversion (MCEC). Dr. Stefan Kotrel (BASF) is acknowledged for his useful advice and stimulating discussions. Dennis Hamstra (Albemarle Catalysts, Ketjen) is thanked for providing the coked E-cat material. Matteo Monai (Utrecht University, UU) is thanked for his role in the supervision of R.F. Sebastian Rejman (UU) is thanked for the TGA measurements.

FundersFunder number
TKI (Top Consortia for Knowledge and Innovation)
BASF
Dutch Research Council (NWO)

    Keywords

    • coke formation
    • fluid catalytic cracking
    • fluorescence lifetime microscopy
    • in situ spectroscopy

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