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Propene oligomerization on Beta zeolites: Development of a microkinetic model and experimental validation

Propene oligomerization on Beta zeolites: Development of a microkinetic model and experimental validation
Propene oligomerization on Beta zeolites: Development of a microkinetic model and experimental validation
The microkinetic modelling methodology that we developed previously to describe Brønsted acid-catalyzed propene oligomerization on medium-pore MFI zeolites has been extended successfully to large-pore Beta zeolites. The extension of the model was supported by the identification of the key descriptors that account for the different topologies and acid strengths of the zeolite frameworks (physisorption enthalpies, stabilization enthalpies, frequency factors). The model is validated with experimental conversion and selectivity data measured in a plug-flow reactor on a commercial Beta zeolite over a range of operating conditions. Analysis of net reaction rates allowed identifying the preferred pathways that increase oligomerization selectivity toward C9 species with increasing propene pressure. The model was additionally used to investigate how the stabilization enthalpies of chemisorbed intermediates, an important catalyst descriptor, influenced the selectivity and surface coverage at iso-conversion. This analysis provides mechanistic insights into the propene oligomerization reaction network and its dependence on zeolite topology, and demonstrates how microkinetic models can describe catalyst behaviour and aid in catalyst and process optimization.
0021-9517
302-314
Vernuccio, Sergio
4bafd7f3-0943-4f6c-bc78-b4026516ccdb
Bickel, Elizabeth E.
f1138e41-cbcc-4d68-8f15-7550df8d1ebc
Gounder, Rajamani
e1151b3d-0696-4ab4-87cf-6494b329cb6c
Broadbelt, Linda J.
735dfd41-2abe-4613-86d1-0ab094dfb269
Vernuccio, Sergio
4bafd7f3-0943-4f6c-bc78-b4026516ccdb
Bickel, Elizabeth E.
f1138e41-cbcc-4d68-8f15-7550df8d1ebc
Gounder, Rajamani
e1151b3d-0696-4ab4-87cf-6494b329cb6c
Broadbelt, Linda J.
735dfd41-2abe-4613-86d1-0ab094dfb269

Vernuccio, Sergio, Bickel, Elizabeth E., Gounder, Rajamani and Broadbelt, Linda J. (2021) Propene oligomerization on Beta zeolites: Development of a microkinetic model and experimental validation. Journal of Catalysis, 395, 302-314. (doi:10.1016/j.jcat.2021.01.018).

Record type: Article

Abstract

The microkinetic modelling methodology that we developed previously to describe Brønsted acid-catalyzed propene oligomerization on medium-pore MFI zeolites has been extended successfully to large-pore Beta zeolites. The extension of the model was supported by the identification of the key descriptors that account for the different topologies and acid strengths of the zeolite frameworks (physisorption enthalpies, stabilization enthalpies, frequency factors). The model is validated with experimental conversion and selectivity data measured in a plug-flow reactor on a commercial Beta zeolite over a range of operating conditions. Analysis of net reaction rates allowed identifying the preferred pathways that increase oligomerization selectivity toward C9 species with increasing propene pressure. The model was additionally used to investigate how the stabilization enthalpies of chemisorbed intermediates, an important catalyst descriptor, influenced the selectivity and surface coverage at iso-conversion. This analysis provides mechanistic insights into the propene oligomerization reaction network and its dependence on zeolite topology, and demonstrates how microkinetic models can describe catalyst behaviour and aid in catalyst and process optimization.

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e-pub ahead of print date: 16 February 2021
Published date: 16 February 2021

Identifiers

Local EPrints ID: 496008
URI: http://eprints.soton.ac.uk/id/eprint/496008
ISSN: 0021-9517
PURE UUID: 1105767f-9732-4e35-b50f-55082495d571
ORCID for Sergio Vernuccio: ORCID iD orcid.org/0000-0003-1254-0293

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Date deposited: 29 Nov 2024 16:03
Last modified: 30 Nov 2024 03:17

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Contributors

Author: Sergio Vernuccio ORCID iD
Author: Elizabeth E. Bickel
Author: Rajamani Gounder
Author: Linda J. Broadbelt

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