Sustainable production of hydrogen and carbon nanotubes/nanofibers from plastic waste through microwave degradation

Plastic waste pyrolysis to clean energy (H2) and valuable carbon nanotubes or nanofibers (CNTs/CNFs) is the most promising waste management and energy regeneration process. In this study, microwave-mediated single-step pyrolysis is used to produce COx-free hydrogen and CNTs/CNFs from real-world plas...

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Bibliographic Details
Published inInternational journal of hydrogen energy Vol. 51; pp. 488 - 498
Main Authors Parmar, Kaushal R., Tuli, Vishal, Caiola, Ashley, Hu, Jianli, Wang, Yuxin
Format Journal Article
LanguageEnglish
Published Elsevier Ltd 02.01.2024
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Summary:Plastic waste pyrolysis to clean energy (H2) and valuable carbon nanotubes or nanofibers (CNTs/CNFs) is the most promising waste management and energy regeneration process. In this study, microwave-mediated single-step pyrolysis is used to produce COx-free hydrogen and CNTs/CNFs from real-world plastic films. Nickel, iron, and cobalt-based catalysts were prepared by the incipient wet-impregnation method and tested for real-world polyethylene plastic film degradation. In addition, the quality of CNTs produced and hydrogen yield were also compared for these catalysts. Various characterization tools were used to characterize the calcined catalysts, spent catalysts, and CNTs. Further, the effect of temperature ramp rate on hydrogen yield and CNTs properties was also analyzed. The results show that the iron-based catalyst produces a high yield of hydrogen and low-diameter and uniform-quality CNTs compared to other catalysts. [Display omitted] •The microwave was utilized for real-world waste plastic pyrolysis.•Transition metal-based alumina catalysts were used as microwave susceptors.•10% Fe/Al2O3 catalyst provides high selectivity towards hydrogen and CNTs.•Heating ramp rates do not affect the selectivity toward product distribution.
ISSN:0360-3199
1879-3487
DOI:10.1016/j.ijhydene.2023.08.224