Catalytic Fast Pyrolysis of Biomass: Catalyst Characterization Reveals the Feed-Dependent Deactivation of a Technical ZSM-5-Based Catalyst

Publication date

2021-01-11

Authors

Luna-Murillo, BeatrizISNI 0000000506808219
Pala, Mehmet
Lucini Paioni, AlessandraISNI 0000000492910692
Baldus, MarcISNI 0000000139673796
Ronsse, Frederik
Prins, Wolter
Bruijnincx, Pieter C AISNI 0000000389623396
Weckhuysen, BMORCID 0000-0001-5245-1426ISNI 0000000110540180

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Advisors

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Document Type

Article
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License

cc_by_nc_nd

Abstract

Catalyst deactivation due to coking is a major challenge in the catalytic fast pyrolysis (CFP) of biomass. Here, a multitechnique investigation of a technical Al2O3-bound ZSM-5-based extrudate catalyst, used for the CFP of pine wood and cellulose (at a reactor temperature of 500 °C), provided insight into the effects of extrusion, the catalytic pyrolysis process, and catalyst regeneration on the catalyst structure. As a result of a reduction in acidity and surface area due to the coking catalyst, the activity dropped drastically with increasing time-on-stream (TOS), as evidenced by a decrease in aromatics yield. Strikingly, confocal fluorescence microscopy at the single-particle level revealed that vapor components derived from whole biomass or just the cellulose component coke differently. While pine-wood-derived species mainly blocked the external area of the catalyst particle, larger carbon deposits were formed inside the catalyst's micropores with cellulose-derived species. Pyridine FT-IR and solid-state NMR spectroscopy demonstrated irreversible changes after regeneration, likely due to partial dealumination. Taken together with <30 g kg-1 aromatics yield on a feed basis, the results show a mismatch between biomass pyrolysis vapors and the technical catalyst used due to a complex interplay of mass transfer limitations and CFP chemistry.

Keywords

Alumina, Biomass, BTX, Catalyst deactivation, Catalytic pyrolysis, Spectroscopy, Zeolite ZSM-5, General Chemistry, Environmental Chemistry, General Chemical Engineering, Renewable Energy, Sustainability and the Environment, SDG 7 - Affordable and Clean Energy

Citation

Luna-Murillo, B, Pala, M, Paioni, A L, Baldus, M, Ronsse, F, Prins, W, Bruijnincx, P C A & Weckhuysen, B M 2021, 'Catalytic Fast Pyrolysis of Biomass : Catalyst Characterization Reveals the Feed-Dependent Deactivation of a Technical ZSM-5-Based Catalyst', ACS Sustainable Chemistry and Engineering, vol. 9, no. 1, pp. 291-304. https://doi.org/10.1021/acssuschemeng.0c07153