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Article

Pyrolysis of Cellulose with Gallium/HZSM-5 Catalysts via Py/GC-MS

1
School of Engineering and Built Environment, Sheffield Hallam University, Sheffield S1 1WB, UK
2
Advanced Food Innovation Centre (AFIC), Sheffield Hallam University, Sheffield S9 2AA, UK
3
Faculty of Engineering and Applied Sciences, Cranfield University, Cranfield MK43 0AL, UK
4
Fouman Faculty of Engineering, College of Engineering, University of Tehran, Fouman 4358139115, Iran
5
Department of Mechanical Engineering, School of Engineering, University of Birmingham, Birmingham B15 2TT, UK
6
Mechanical Engineering Department, Jubail Industrial College, Jubail 31961, Saudi Arabia
*
Author to whom correspondence should be addressed.
Environments 2026, 13(2), 113; https://doi.org/10.3390/environments13020113
Submission received: 9 January 2026 / Revised: 8 February 2026 / Accepted: 13 February 2026 / Published: 17 February 2026

Abstract

Cellulose has received significant attention, given its high demand for the transition to sustainable fuels and renewable energy, addressing the environmental challenges of fossil fuels. Fast pyrolysis is a process that can transform cellulose into bio-oil. Although the bio-oils produced contain considerable amounts of oxygen and water, they are highly corrosive and highly viscous, which limits their utility as biofuels. Pyrolysis bio-oils require upgrading to remove oxygen and corrosive components, thereby enhancing their stability for use as biofuels and their environmental sustainability. This study investigates the catalytic pyrolysis of cellulose without a catalyst and with Ga/HZSM-5 catalysts with various gallium loadings (0.3, 3 and 9 wt%) and bulk Ga2O3 catalysts using pyrolysis/gas chromatography–mass spectrometry (Py/GC-MS). The catalytic influence of different gallium loadings on HZSM-5 in cellulose pyrolysis reactions is discussed using a range of characterisation techniques, including ICP, XRD, N2 porosimetry, DRIFTS, and TPRS. The main production of oxygenated compounds (furan, sugar, ketone and phenol) and hydrocarbon products, including total aromatic and monocyclic and polycyclic aromatics, as well as benzene, toluene, xylene (BTX) and naphthalene compounds, using a family of Ga-doped HZSM-5 catalysts for cellulose pyrolysis is investigated for making sustainable cellulose-derived fuel. Ga(3)/HZSM-5 formed the highest amount of aromatics, displaying that aromatic yield depends on the Brønsted-to-Lewis acid balance (2.3 ratio) and total acidity (1.03 mmol·g−1), rather than on gallium loading alone.
Keywords: pyrolysis/gas chromatography–mass spectrometry (Py/GC-MS); gallium/HZSM-5; bio-oil pyrolysis/gas chromatography–mass spectrometry (Py/GC-MS); gallium/HZSM-5; bio-oil
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MDPI and ACS Style

Jahangiri, H.; Keynejad, K.; Goel, M.; Alrashidi, K.; Al-Qahtani, A.M.; Doustdar, O. Pyrolysis of Cellulose with Gallium/HZSM-5 Catalysts via Py/GC-MS. Environments 2026, 13, 113. https://doi.org/10.3390/environments13020113

AMA Style

Jahangiri H, Keynejad K, Goel M, Alrashidi K, Al-Qahtani AM, Doustdar O. Pyrolysis of Cellulose with Gallium/HZSM-5 Catalysts via Py/GC-MS. Environments. 2026; 13(2):113. https://doi.org/10.3390/environments13020113

Chicago/Turabian Style

Jahangiri, Hessam, Kamran Keynejad, Mukesh Goel, Khaled Alrashidi, Ali Mubarak Al-Qahtani, and Omid Doustdar. 2026. "Pyrolysis of Cellulose with Gallium/HZSM-5 Catalysts via Py/GC-MS" Environments 13, no. 2: 113. https://doi.org/10.3390/environments13020113

APA Style

Jahangiri, H., Keynejad, K., Goel, M., Alrashidi, K., Al-Qahtani, A. M., & Doustdar, O. (2026). Pyrolysis of Cellulose with Gallium/HZSM-5 Catalysts via Py/GC-MS. Environments, 13(2), 113. https://doi.org/10.3390/environments13020113

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