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  4. Plasma-Enabled Process with Single-Atom Catalysts for Sustainable Plastic Waste Transformation
 
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2024
Journal Article
Title

Plasma-Enabled Process with Single-Atom Catalysts for Sustainable Plastic Waste Transformation

Abstract
The escalating issue of plastic waste generation has prompted the search for an effective solution to address these challenges. In this study, we present a novel plasma-enabled strategy for the rapid breakdown of various types of plastic wastes, including mixtures, into high-value carbon nanomaterials and hydrogen. The H2 yield and selectivity achieved through the implemented catalyst-free plasma-enabled strategy are 14.2 and 5.9 times higher, respectively, compared to those obtained with conventional thermal pyrolysis under similar conditions. It is noteworthy that this catalyst-free plasma alone approach yields a significantly higher energy yield of H2 (gH2/kWh) compared to other pyrolysis processes. By coupling plasma pyrolysis with thermal catalytic process, employing of 1 wt . % M/CeO2 (M=Fe, Co, and Ni) atomically dispersed catalysts can further enhance hydrogen production. Specifically, the 1 wt . % Co/CeO2 catalyst demonstrated excellent catalytic performance throughout the 10 cycles of plastic waste decomposition, achieving the highest H2 yield of 46.7 mmol/gplastic (equivalent to 64.4 % of theoretical H2 production) and nearly 100 % hydrogen atom recovery efficiency at the 7th cycle. Notably, the H2 yield achieved over the atomically dispersed Fe on CeO2 surface (1 wt . % Fe/CeO2) in the integrated plasma-thermal catalytic process is comparable to that obtained with Fe particles on CeO2 surface (10 wt . % Fe/CeO2). This outcome, demonstrated with single-atom catalysts, offers a promising avenue for cost-effective and efficient chemical plastic recycling. Through a combination of experimental and computational efforts, we have provided an in-depth understanding of the catalytic mechanisms of the investigated single atom catalysts in the developed plasma-enabled process. This innovative and straightforward approach provides a promising and expedient strategy for continuously converting diverse plastic waste streams, including mixed and contaminated sources, into high-value products conducive to a circular plastic economy.
Author(s)
Yu, Xiao
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Rao, Zhiqiang
Southwest Petroleum University China
Chen, Guoxing  
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Yang, Yuantao
Southwest Petroleum University China
Yoon, Songhak
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Liu, Lina
Nankai University
Huang, Zeai
Southwest Petroleum University China
Widenmeyer, Marc
Technische Universität Darmstadt
Guo, Heng
Southwest Petroleum University China
Homm, Gert  
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Kunz, Ulrike
Technische Universität Darmstadt
Liu, Xingmin
Technische Universität Darmstadt
Ionescu, Emanuel  orcid-logo
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Molina-Luna, Leopoldo
Technische Universität Darmstadt
Tu, Xin
University of Liverpool
Zhou, Ying
Southwest Petroleum University China
Weidenkaff, Anke  orcid-logo
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Journal
Angewandte Chemie. International edition  
Open Access
File(s)
Download (11.12 MB)
Rights
CC BY-NC 4.0: Creative Commons Attribution-NonCommercial
DOI
10.1002/anie.202404196
10.24406/publica-6421
Additional link
Full text
Language
English
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Keyword(s)
  • carbon nanotube

  • H2

  • plasma pyrolysis

  • plastic waste

  • single atom catalyst

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