Coupling Polyolefin Conversion and Methanol Reduction for C <sub>9</sub> –C <sub>10</sub> Alkylaromatic Production
Abstract
ABSTRACT This work presents a strategy for integrating polyethylene (PE) aromatization and Friedel–Crafts‐type alkylation reactions via methanol reduction for upgrading PE to 79.0 wt% liquid with 56.1 wt% aromatics at 280 °C, enabled by a bifunctional NiGa/ZSM‐5‐H catalyst. In the catalyst design, hierarchical ZSM‐5‐H promotes cracking of PE, while Ga serves not only as an active site for aromatization and alkylation but also suppresses Ni 0 formation by withdrawing electron density from Ni, ensuring that Ni 2+ remains as the active catalytic site for methanol reduction. Hydrogen species derived from PE aromatization participate in methanol reduction, while methanol functions mainly as a hydrogen sink and methyl donor yet also releases some hydrogen under reaction conditions, allowing the PE aromatization and methanol reduction steps to be coupled. In the presence of hydrogen, methanol reduction generates methyl species that promote Friedel–Crafts‐type alkylation, incorporating methyl groups into the alkyl substituents of aromatics and boosting C 9 –C 10 alkylaromatics yields by more than 600%. By introducing 0.99 g/g methanol equivalent into the PE‐catalyst reaction system, aromatic and C 9 –C 10 alkylaromatics yields are more than double those without methanol. The strategy is applicable to upgrading of polyolefins and offers a practical route for industrial processing of plastic waste.
Article Details
Authors (4)
Sheng‐Ren Li
Biomass Group College of Engineering Nanjing Agricultural University Nanjing Jiangsu China
Richard L. Smith
Graduate School of Environmental Studies Tohoku University Aoba‐ku, Sendai Japan
Janusz A. Kozinski
Faculty of Engineering Lakehead University Thunder Bay Ontario Canada
Zhen Fang