TY - JOUR
T1 - Tandem microplastic degradation and hydrogen production by hierarchical carbon nitride-supported single-atom iron catalysts
AU - Lin, Jingkai
AU - Hu, Kunsheng
AU - Wang, Yantao
AU - Tian, Wenjie
AU - Hall, Tony
AU - Duan, Xiaoguang
AU - Sun, Hongqi
AU - Zhang, Huayang
AU - Cortés, Emiliano
AU - Wang, Shaobin
N1 - Publisher Copyright:
© 2024. The Author(s).
PY - 2024/12
Y1 - 2024/12
N2 - Microplastic pollution, an emerging environmental issue, poses significant threats to aquatic ecosystems and human health. In tackling microplastic pollution and advancing green hydrogen production, this study reveals a tandem catalytic microplastic degradation-hydrogen evolution reaction (MPD-HER) process using hierarchical porous carbon nitride-supported single-atom iron catalysts (FeSA-hCN). Through hydrothermal-assisted Fenton-like reactions, we accomplish near-total ultrahigh-molecular-weight-polyethylene degradation into C3-C20 organics with 64% selectivity of carboxylic acid under neutral pH, a leap beyond current capabilities in efficiency, selectivity, eco-friendliness, and stability over six cycles. The system demonstrates versatility by degrading various daily-use plastics across different aquatic settings. The mixture of FeSA-hCN and plastic degradation products further achieves a hydrogen evolution of 42 μmol h‒1 under illumination, outperforming most existing plastic photoreforming methods. This tandem MPD-HER process not only provides a scalable and economically feasible strategy to combat plastic pollution but also contributes to the hydrogen economy, with far-reaching implications for global sustainability initiatives.
AB - Microplastic pollution, an emerging environmental issue, poses significant threats to aquatic ecosystems and human health. In tackling microplastic pollution and advancing green hydrogen production, this study reveals a tandem catalytic microplastic degradation-hydrogen evolution reaction (MPD-HER) process using hierarchical porous carbon nitride-supported single-atom iron catalysts (FeSA-hCN). Through hydrothermal-assisted Fenton-like reactions, we accomplish near-total ultrahigh-molecular-weight-polyethylene degradation into C3-C20 organics with 64% selectivity of carboxylic acid under neutral pH, a leap beyond current capabilities in efficiency, selectivity, eco-friendliness, and stability over six cycles. The system demonstrates versatility by degrading various daily-use plastics across different aquatic settings. The mixture of FeSA-hCN and plastic degradation products further achieves a hydrogen evolution of 42 μmol h‒1 under illumination, outperforming most existing plastic photoreforming methods. This tandem MPD-HER process not only provides a scalable and economically feasible strategy to combat plastic pollution but also contributes to the hydrogen economy, with far-reaching implications for global sustainability initiatives.
UR - http://www.scopus.com/inward/record.url?scp=85206000665&partnerID=8YFLogxK
U2 - 10.1038/s41467-024-53055-1
DO - 10.1038/s41467-024-53055-1
M3 - Article
C2 - 39384850
AN - SCOPUS:85206000665
SN - 2041-1723
VL - 15
JO - Nature Communications
JF - Nature Communications
M1 - 8769
ER -