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◆ Journal of hazardous materials2026-09-21

Mechanistic insights into the Cr-Zr/ZSM-5 catalyzed cracking of waste polyethylene: Steering product distribution toward BTX aromatics and sustainable aviation fuel.

Shihe Zhang, Shuo Li, Yijun Tian, Chengna Dai, Ruinian Xu, Biaohua Chen

原始摘要(英文原文)· Original abstract
The catalytic conversion of polyethylene (PE) into a C6-C8 BTX-rich fraction and a C9-C16 SAF-range hydrocarbon fraction provides a potential route for plastic-carbon valorization, where "SAF-range" refers to the aviation-fuel-relevant carbon-number range rather than to specification-compliant finished SAF. However, many reported PE-upcycling routes require elevated temperatures, external H2, noble-metal catalysts, or high catalyst-to-feed ratios. Herein, we report a rationally engineered bifunctional Cr-Zr/ZSM-5 catalyst that converts PE at 280 °C and 0.5 MPa into targeted products with a liquid yield of 62 wt% and approximately 90% selectivity within the BTX-rich C6-C8 fraction and SAF-range C9-C16 hydrocarbons. Combined characterization, pyridine-adsorbed FTIR, online mass spectrometry, in situ FTIR, product analysis, and model-surface DFT calculations support a proposed bifunctional reaction network. A proposed reaction network is constructed, in which initial conversion may involve thermal and surface-assisted fragmentation at accessible external/near-external regions. Cr-Zr oxide-related species may subsequently facilitate adsorption, C-H activation, dehydrogenation, and olefin-intermediate formation. The resulting smaller olefinic intermediates can then undergo Brønsted-acid-initiated secondary conversion within the MFI channels, while product formation is accompanied by dynamic, competitive internal hydrogen redistribution without external H2. This work bridges atomic-scale engineering with catalytic function, providing a scalable, mechanism-guided platform for plastic waste valorization and establishing a fundamental mechanistic framework for the rational design of tandem catalytic systems in waste-to-fuel conversion.
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Mechanistic insights into the Cr-Zr/ZSM-5 catalyzed cracking of waste polyethylene: Steering product distribution toward BTX aromatics and sustainable aviation fuel. — 科研速览 Science Skim