Carbon Deposit Analysis in Catalyst Deactivation, Regeneration, and Rejuvenation

Publication date

2023-07-17

Authors

Vogt, Eelco T.C.
Fu, DonglongISNI 0000000505995147
Weckhuysen, B.M.ORCID 0000-0001-5245-1426ISNI 0000000110540180

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by

Abstract

Hydrocarbon conversion catalysts suffer from deactivation by deposition or formation of carbon deposits. Carbon deposit formation is thermodynamically favored above 350 °C, even in some hydrogen-rich environments. We discuss four basic mechanisms: a carbenium-ion based mechanism taking place on acid sites of zeolites or bifunctional catalysts, a metal-induced formation of soft coke (i.e., oligomers of small olefins) on bifunctional catalysts, a radical-mediated mechanism in higher-temperature processes, and fast-growing carbon filament formation. Catalysts deactivate because carbon deposits block pores at different length scales, or directly block active sites. Some deactivated catalysts can be re-used, others can be regenerated or have to be discarded. Catalyst and process design can mitigate the effects of deactivation. New analytical tools allow for the direct observation (in some cases even under in situ or operando conditions) of the 3D-distribution of coke-type species as a function of catalyst structure and lifetime.

Keywords

Carbon Deposition, Catalyst Deactivation, Catalyst Design, Coke, Coke Analysis, Catalysis, General Chemistry

Citation

Vogt, E T C, Fu, D & Weckhuysen, B M 2023, 'Carbon Deposit Analysis in Catalyst Deactivation, Regeneration, and Rejuvenation', Angewandte Chemie - International Edition, vol. 62, no. 29, e202300319. https://doi.org/10.1002/anie.202300319