Enhancing aromatics selectivity and catalyst stability in castor oil cracking via hierarchical ZSM-5 with tailored mesoporosity

Catalytic cracking of biomass oil offers a sustainable route to aromatics, but conventional microporous zeolite catalysts suffer from low aromatization efficiency and rapid coking. Hierarchical ZSM‑5 zeolites were synthesized by hydrothermal crystallization and alkaline desilication to overcome mass transfer limitations. The alkaline treatment parameters, including NaOH concentration, treatment time, and temperature, were optimized via orthogonal experiments, with treatment time identified as the most influential factor. Under the optimal conditions (0.3 mol/L NaOH, 80 ℃, 3 h), the hierarchical ZSM‑5 delivers an aromatic yield of 39.2%, notably higher than the 26.8% obtained over the pristine ZSM‑5 at 450 ℃. The synergy of hierarchical pores and optimized acidity not only enhances diffusion and coke tolerance, but also promotes deoxygenation and aromatization, thereby reducing deactivation and sustaining stability. In‑situ DRIFTS revealed that the adsorbed castor oil macromolecules crack into oxygenated intermediates upon heating, followed by CO/CO 2 release via decarboxylation/decarbonylation; these intermediates finally aromatize over acid sites to BTX, while polycyclic aromatics and coke form concurrently. This work provides a strategy for designing efficient zeolite catalysts for renewable aromatics production.

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Publication Details

Journal
Fuel
Published
2026-10-03
DOI
https://doi.org/10.1016/j.fuel.2026.141585
Primary Topic
Zeolite Catalysis and Synthesis
Type
article
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article

Enhancing aromatics selectivity and catalyst stability in castor oil cracking via hierarchical ZSM-5 with tailored mesoporosity

Qiaofei Zhang, Xuzhao Yang, Cong Liu, Xin Liang et al.
Fuel
Zeolite Catalysis and Synthesis
article

Enhancing aromatics selectivity and catalyst stability in castor oil cracking via hierarchical ZSM-5 with tailored mesoporosity

Qiaofei Zhang, Xuzhao Yang, Cong Liu, Xin Liang, Miao Du, Junhao Zhi, Yingying Zhang, Liuqi Xin, Chuanru Shi, Yakun Li, Liming Zhou
article en

Abstract

Catalytic cracking of biomass oil offers a sustainable route to aromatics, but conventional microporous zeolite catalysts suffer from low aromatization efficiency and rapid coking. Hierarchical ZSM‑5 zeolites were synthesized by hydrothermal crystallization and alkaline desilication to overcome mass transfer limitations. The alkaline treatment parameters, including NaOH concentration, treatment time, and temperature, were optimized via orthogonal experiments, with treatment time identified as the most influential factor. Under the optimal conditions (0.3 mol/L NaOH, 80 ℃, 3 h), the hierarchical ZSM‑5 delivers an aromatic yield of 39.2%, notably higher than the 26.8% obtained over the pristine ZSM‑5 at 450 ℃. The synergy of hierarchical pores and optimized acidity not only enhances diffusion and coke tolerance, but also promotes deoxygenation and aromatization, thereby reducing deactivation and sustaining stability. In‑situ DRIFTS revealed that the adsorbed castor oil macromolecules crack into oxygenated intermediates upon heating, followed by CO/CO 2 release via decarboxylation/decarbonylation; these intermediates finally aromatize over acid sites to BTX, while polycyclic aromatics and coke form concurrently. This work provides a strategy for designing efficient zeolite catalysts for renewable aromatics production.

FuelVol. 430
Zhengzhou University of Light Industry (CN), Henan University of Technology (CN)
Openalex Percentile: Top 26%
Zeolite Catalysis and Synthesis
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Enhancing aromatics selectivity and catalyst stability in castor oil cracking via hierarchical ZSM-5 with tailored mesoporosity — Qiaofei Zhang, Xuzhao Yang, et al. · Fuel (2026) | TGRS Research Map | TGRS