Polyethylene and Polypropylene Pyrolysis Using Fe3+-Modified Kaolin Catalyst for Enhanced Gas and Pyrolysis Oil Production


Nechipurenko S. Dossumova B. Efremov S. Zabara N. Kaiaidarova A. Ibragimova O. Omarova A. Pogorov F. Tokmurzin D.
November 2025Multidisciplinary Digital Publishing Institute (MDPI)

Polymers
2025#17Issue 21

Calcined and acid-leached kaolin impregnated with Fe(NO3)3·9H2O (6.6 wt. % Fe2O3) was developed as an inexpensive bifunctional catalyst for the slow fixed-bed pyrolysis of polypropylene (PP) and low-density polyethylene (LDPE). Experiments were run with catalyst-to-plastic mass ratios of 1:4, 1:2, and 1:1 in a quartz tube reactor heated from 25 to 800 °C. For PP, increasing the Fe/kaolin loading progressively raised non-condensable gas from 26 wt. % to 44 wt. % and drove liquid aromatics from 27.9% to 72.3%, while combined paraffins olefins fell to 2.5% and wax exhibited a 46 → 24 → 36 wt. % trend. In contrast, LDPE at a 1:4 ratio already yielded 56 wt. % oil and only 22 wt. % wax; further catalyst addition mainly enhanced CH4/CO-rich pyrolysis gas (PyGas) and char without substantially boosting aromatics. Gas analysis confirmed that Fe2O3 reduction and kaolin de-hydroxylation generated in situ H2O, CO, and H2. Given the catalyst’s low cost, regenerability, and ability to valorize the two most abundant waste polyolefins within the same reactor, the process offers a scalable route to flexible fuel and gas production from mixed plastic streams.

catalytic pyrolysis , kaolin , polyethylene , polypropylene , slow pyrolysis , thermogravimetric analysis , waste plastics

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Center of Physical Chemical Methods of Research and Analysis, Faculty of Chemistry and Chemical Technology, Al-Farabi Kazakh National University, Almaty, 050012, Kazakhstan
Laboratory for Chemical Technology, Ghent University, Industriele Scheikunde, Technologiepark-Zwijnaarde 125, Gent, 9052, Belgium

Center of Physical Chemical Methods of Research and Analysis
Laboratory for Chemical Technology

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